<?xml version="1.0" encoding="UTF-8"?><!DOCTYPE article PUBLIC "-//NLM//DTD JATS (Z39.96) Journal Archiving and Interchange DTD with MathML3 v1.2 20190208//EN"  "JATS-archivearticle1-mathml3.dtd"><article xmlns:ali="http://www.niso.org/schemas/ali/1.0/" xmlns:xlink="http://www.w3.org/1999/xlink" article-type="research-article" dtd-version="1.2"><front><journal-meta><journal-id journal-id-type="nlm-ta">elife</journal-id><journal-id journal-id-type="publisher-id">eLife</journal-id><journal-title-group><journal-title>eLife</journal-title></journal-title-group><issn pub-type="epub" publication-format="electronic">2050-084X</issn><publisher><publisher-name>eLife Sciences Publications, Ltd</publisher-name></publisher></journal-meta><article-meta><article-id pub-id-type="publisher-id">76003</article-id><article-id pub-id-type="doi">10.7554/eLife.76003</article-id><article-categories><subj-group subj-group-type="display-channel"><subject>Research Article</subject></subj-group><subj-group subj-group-type="heading"><subject>Neuroscience</subject></subj-group></article-categories><title-group><article-title>The enteric nervous system of the <italic>C. elegans</italic> pharynx is specified by the Sine oculis-like homeobox gene <italic>ceh-34</italic></article-title></title-group><contrib-group><contrib contrib-type="author" id="author-81095"><name><surname>Vidal</surname><given-names>Berta</given-names></name><xref ref-type="aff" rid="aff1">1</xref><xref ref-type="fn" rid="con1"/><xref ref-type="fn" rid="conf1"/></contrib><contrib contrib-type="author" id="author-262932"><name><surname>Gulez</surname><given-names>Burcu</given-names></name><xref ref-type="aff" rid="aff1">1</xref><xref ref-type="fn" rid="con2"/><xref ref-type="fn" rid="conf1"/></contrib><contrib contrib-type="author" id="author-262933"><name><surname>Cao</surname><given-names>Wen Xi</given-names></name><xref ref-type="aff" rid="aff1">1</xref><xref ref-type="fn" rid="con3"/><xref ref-type="fn" rid="conf1"/></contrib><contrib contrib-type="author" id="author-262934"><name><surname>Leyva-Díaz</surname><given-names>Eduardo</given-names></name><contrib-id authenticated="true" contrib-id-type="orcid">https://orcid.org/0000-0001-6750-9168</contrib-id><xref ref-type="aff" rid="aff1">1</xref><xref ref-type="fn" rid="con4"/><xref ref-type="fn" rid="conf2"/></contrib><contrib contrib-type="author" id="author-215494"><name><surname>Reilly</surname><given-names>Molly B</given-names></name><contrib-id authenticated="true" contrib-id-type="orcid">https://orcid.org/0000-0002-7180-7763</contrib-id><xref ref-type="aff" rid="aff1">1</xref><xref ref-type="fn" rid="con5"/><xref ref-type="fn" rid="conf1"/></contrib><contrib contrib-type="author" id="author-262935"><name><surname>Tekieli</surname><given-names>Tessa</given-names></name><xref ref-type="aff" rid="aff1">1</xref><xref ref-type="fn" rid="con6"/><xref ref-type="fn" rid="conf1"/></contrib><contrib contrib-type="author" corresp="yes" id="author-1107"><name><surname>Hobert</surname><given-names>Oliver</given-names></name><contrib-id authenticated="true" contrib-id-type="orcid">https://orcid.org/0000-0002-7634-2854</contrib-id><email>or38@columbia.edu</email><xref ref-type="aff" rid="aff1">1</xref><xref ref-type="other" rid="fund1"/><xref ref-type="other" rid="fund2"/><xref ref-type="other" rid="fund3"/><xref ref-type="fn" rid="con7"/><xref ref-type="fn" rid="conf1"/></contrib><aff id="aff1"><label>1</label><institution-wrap><institution-id institution-id-type="ror">https://ror.org/006w34k90</institution-id><institution>Department of Biological Sciences, Columbia University, Howard Hughes Medical Institute</institution></institution-wrap><addr-line><named-content content-type="city">New York</named-content></addr-line><country>United States</country></aff></contrib-group><contrib-group content-type="section"><contrib contrib-type="editor"><name><surname>Portman</surname><given-names>Douglas</given-names></name><role>Reviewing Editor</role><aff><institution-wrap><institution-id institution-id-type="ror">https://ror.org/022kthw22</institution-id><institution>University of Rochester</institution></institution-wrap><country>United States</country></aff></contrib><contrib contrib-type="senior_editor"><name><surname>Sengupta</surname><given-names>Piali</given-names></name><role>Senior Editor</role><aff><institution-wrap><institution-id institution-id-type="ror">https://ror.org/05abbep66</institution-id><institution>Brandeis University</institution></institution-wrap><country>United States</country></aff></contrib></contrib-group><pub-date date-type="publication" publication-format="electronic"><day>24</day><month>03</month><year>2022</year></pub-date><pub-date pub-type="collection"><year>2022</year></pub-date><volume>11</volume><elocation-id>e76003</elocation-id><history><date date-type="received" iso-8601-date="2021-12-01"><day>01</day><month>12</month><year>2021</year></date><date date-type="accepted" iso-8601-date="2022-03-23"><day>23</day><month>03</month><year>2022</year></date></history><pub-history><event><event-desc>This manuscript was published as a preprint at .</event-desc><date date-type="preprint" iso-8601-date="2021-12-01"><day>01</day><month>12</month><year>2021</year></date><self-uri content-type="preprint" xlink:href="https://doi.org/10.1101/2021.11.30.470650"/></event></pub-history><permissions><copyright-statement>© 2022, Vidal et al</copyright-statement><copyright-year>2022</copyright-year><copyright-holder>Vidal et al</copyright-holder><ali:free_to_read/><license xlink:href="http://creativecommons.org/licenses/by/4.0/"><ali:license_ref>http://creativecommons.org/licenses/by/4.0/</ali:license_ref><license-p>This article is distributed under the terms of the <ext-link ext-link-type="uri" xlink:href="http://creativecommons.org/licenses/by/4.0/">Creative Commons Attribution License</ext-link>, which permits unrestricted use and redistribution provided that the original author and source are credited.</license-p></license></permissions><self-uri content-type="pdf" xlink:href="elife-76003-v2.pdf"/><self-uri content-type="figures-pdf" xlink:href="elife-76003-figures-v2.pdf"/><abstract><p>Overarching themes in the terminal differentiation of the enteric nervous system, an autonomously acting unit of animal nervous systems, have so far eluded discovery. We describe here the overall regulatory logic of enteric nervous system differentiation of the nematode <italic>Caenorhabditis elegans</italic> that resides within the foregut (pharynx) of the worm. A <italic>C. elegans</italic> homolog of the <italic>Drosophila</italic> Sine oculis homeobox gene, <italic>ceh-34</italic>, is expressed in all 14 classes of interconnected pharyngeal neurons from their birth throughout their life time, but in no other neuron type of the entire animal. Constitutive and temporally controlled <italic>ceh-34</italic> removal shows that <italic>ceh-34</italic> is required to initiate and maintain the neuron type-specific terminal differentiation program of all pharyngeal neuron classes, including their circuit assembly. Through additional genetic loss of function analysis, we show that within each pharyngeal neuron class, <italic>ceh-34</italic> cooperates with different homeodomain transcription factors to individuate distinct pharyngeal neuron classes. Our analysis underscores the critical role of homeobox genes in neuronal identity specification and links them to the control of neuronal circuit assembly of the enteric nervous system. Together with the pharyngeal nervous system simplicity as well as its specification by a Sine oculis homolog, our findings invite speculations about the early evolution of nervous systems.</p></abstract><kwd-group kwd-group-type="author-keywords"><kwd>transcriptional control</kwd><kwd>homeobox gene</kwd><kwd>selector gene</kwd><kwd>neuronal fate</kwd><kwd>enteric nervous system</kwd></kwd-group><kwd-group kwd-group-type="research-organism"><title>Research organism</title><kwd><italic>C. elegans</italic></kwd></kwd-group><funding-group><award-group id="fund1"><funding-source><institution-wrap><institution-id institution-id-type="FundRef">http://dx.doi.org/10.13039/100000011</institution-id><institution>Howard Hughes Medical Institute</institution></institution-wrap></funding-source><principal-award-recipient><name><surname>Hobert</surname><given-names>Oliver</given-names></name></principal-award-recipient></award-group><award-group id="fund2"><funding-source><institution-wrap><institution-id institution-id-type="FundRef">http://dx.doi.org/10.13039/100000002</institution-id><institution>National Institutes of Health</institution></institution-wrap></funding-source><award-id>R01 NS039996</award-id><principal-award-recipient><name><surname>Hobert</surname><given-names>Oliver</given-names></name></principal-award-recipient></award-group><award-group id="fund3"><funding-source><institution-wrap><institution-id institution-id-type="FundRef">http://dx.doi.org/10.13039/100000002</institution-id><institution>National Institutes of Health</institution></institution-wrap></funding-source><award-id>R21NS106843</award-id><principal-award-recipient><name><surname>Hobert</surname><given-names>Oliver</given-names></name></principal-award-recipient></award-group><funding-statement>The funders had no role in study design, data collection and interpretation, or the decision to submit the work for publication.</funding-statement></funding-group><custom-meta-group><custom-meta specific-use="meta-only"><meta-name>Author impact statement</meta-name><meta-value>Genetic analysis reveals the molecular logic of specifying and maintaining the enteric nervous system of the nematode <italic>Caenorhabditis elegans</italic>.</meta-value></custom-meta></custom-meta-group></article-meta></front><body><sec id="s1" sec-type="intro"><title>Introduction</title><p>Across animal phylogeny, enteric nervous systems constitute a self-contained, autonomously acting neuronal network that detects physiological conditions to control the peristaltic movement of food through the digestive tract (<xref ref-type="bibr" rid="bib10">Ayali, 2004</xref>; <xref ref-type="bibr" rid="bib24">Copenhaver, 2007</xref>; <xref ref-type="bibr" rid="bib37">Fung and Vanden Berghe, 2020</xref>; <xref ref-type="bibr" rid="bib52">Hartenstein, 1997</xref>; <xref ref-type="bibr" rid="bib74">Laranjeira and Pachnis, 2009</xref>). Because of structural and functional autonomy, the enteric nervous system has been referred to as a ‘second brain’ (<xref ref-type="bibr" rid="bib43">Gershon, 1998</xref>). In mammals, the enteric nervous system is composed of around 20 different neuron types, categorized into intrinsic sensory, inter- or motor neurons, which line the interior lumen of different sections of the digestive system (<xref ref-type="bibr" rid="bib34">Drokhlyansky et al., 2020</xref>; <xref ref-type="bibr" rid="bib38">Furness, 2000</xref>). While progress has been made in understanding early developmental patterning events that establish the fate of neurons in the enteric nervous system of mammals (<xref ref-type="bibr" rid="bib85">Nagy and Goldstein, 2017</xref>; <xref ref-type="bibr" rid="bib103">Sasselli et al., 2012</xref>), fish (<xref ref-type="bibr" rid="bib41">Ganz, 2018</xref>), and flies (<xref ref-type="bibr" rid="bib24">Copenhaver, 2007</xref>; <xref ref-type="bibr" rid="bib84">Myers et al., 2018</xref>), much less is known about terminal differentiation programs of enteric neurons, both in vertebrate and invertebrate models (<xref ref-type="bibr" rid="bib24">Copenhaver, 2007</xref>; <xref ref-type="bibr" rid="bib51">Hao and Young, 2009</xref>; <xref ref-type="bibr" rid="bib80">Memic et al., 2018</xref>; <xref ref-type="bibr" rid="bib81">Morarach et al., 2021</xref>; <xref ref-type="bibr" rid="bib97">Rao and Gershon, 2018</xref>). Specifically, it has remained unclear as to whether there are common unifying themes in how enteric neurons acquire their terminally differentiated state. This is particularly interesting from an evolutionary standpoint. The function of enteric neurons in controlling feeding behavior is an ancient one that may precede the evolution of the bilaterian central nervous system (<xref ref-type="bibr" rid="bib23">Cook et al., 2020</xref>; <xref ref-type="bibr" rid="bib39">Furness and Stebbing, 2018</xref>; <xref ref-type="bibr" rid="bib45">Gilbert, 2019</xref>; <xref ref-type="bibr" rid="bib72">Koizumi, 2007</xref>). Understanding how enteric neurons acquire their terminal features may therefore provide novel insights into nervous system evolution.</p><p>The nematode <italic>Caenorhabditis elegans</italic> contains an autonomously acting nervous system in its foregut, the pharynx, composed of 20 synaptically interconnected neurons that fall into 14 anatomically distinct classes (<xref ref-type="bibr" rid="bib3">Albertson and Thomson, 1976</xref>; <xref ref-type="bibr" rid="bib23">Cook et al., 2020</xref>; <xref ref-type="bibr" rid="bib79">Mango, 2007</xref>; <xref ref-type="fig" rid="fig1">Figure 1</xref>). Due to its association with the digestive tract of the worm, the pharyngeal nervous system can be considered to be the enteric nervous system of <italic>C. elegans</italic>. Apart from this anatomical association, the pharyngeal nervous system shares functional features of enteric nervous systems of more complex animals. It is required for movement of food through the digestive tract of the worm and functions in an entirely autonomous manner, even if removed from the rest of the animal (<xref ref-type="bibr" rid="bib3">Albertson and Thomson, 1976</xref>; <xref ref-type="bibr" rid="bib8">Avery, 2012</xref>; <xref ref-type="bibr" rid="bib23">Cook et al., 2020</xref>; <xref ref-type="bibr" rid="bib79">Mango, 2007</xref>). Like other enteric nervous systems, the nematode pharyngeal nervous system constitutes a non-centralized neuronal network isolated from the rest of the nervous system and, in rough analogy to the vagus nerve, is connected to the remainder of the nervous system through a single nerve fiber, that of the bilateral RIP neuron pair (<xref ref-type="bibr" rid="bib3">Albertson and Thomson, 1976</xref>; <xref ref-type="bibr" rid="bib23">Cook et al., 2020</xref>; <xref ref-type="bibr" rid="bib22">Cook et al., 2019</xref>; <xref ref-type="bibr" rid="bib124">White et al., 1986</xref>). Like vertebrate enteric neurons (<xref ref-type="bibr" rid="bib37">Fung and Vanden Berghe, 2020</xref>), pharyngeal neurons have sensory, inter- and motorneuron function (<xref ref-type="bibr" rid="bib7">Avery and Horvitz, 1989</xref>; <xref ref-type="bibr" rid="bib23">Cook et al., 2020</xref>; <xref ref-type="bibr" rid="bib117">Trojanowski et al., 2014</xref>).</p><fig id="fig1" position="float"><label>Figure 1.</label><caption><title>The pharyngeal nervous system of <italic>Caenorhabditis elegans</italic>.</title><p>(<bold>A</bold>) Overview of the <italic>C. elegans</italic> alimentary system from Wormbook (<xref ref-type="bibr" rid="bib48">Hall and Altun, 2007</xref>), with neuronal cell bodies in the pharynx added in red. (<bold>B</bold>) Projection patterns of pharyngeal neurons within the pharynx displayed in the format of a subway map (kindly provided by SJ Cook). (<bold>C</bold>) Full connectome of pharyngeal nervous system, adapted from <xref ref-type="bibr" rid="bib23">Cook et al., 2020</xref>. Square nodes are end organs, including muscle (green), marginal cells (fuchsia), gland cells (blue), epithelial cells (gray), and basement membrane (orange). Neurons are red ellipses. Neurons with outlines have either apical (purple), unexposed (brown), or embedded (blue) sensory endings. Directed chemical edges and undirected gap junction edges are represented by black arrows and red lines, respectively. The line width is proportional to the anatomical strength of that connection (# serial sections). The pharyngeal nervous system is connected to the rest of the nervous system through a single neuron pair (RIP). (<bold>D</bold>) Single cell transcriptome similarity between neuron types classes with widths of edges indicating strengths of similarity (Pearson correlation coefficients &gt; 0.7), showing that pharyngeal neurons are more similar to each other than to other neurons in the <italic>C. elegans</italic> nervous system. Reproduced from <xref ref-type="bibr" rid="bib115">Taylor et al., 2021</xref>. (<bold>E</bold>) Molecular markers used in this study for cell fate analysis. See <xref ref-type="supplementary-material" rid="supp1">Supplementary file 1</xref> for information on reporter constructs.</p></caption><graphic mime-subtype="tiff" mimetype="image" xlink:href="elife-76003-fig1-v2.tif"/><permissions><copyright-statement>© 2020, John Wily and Sons</copyright-statement><copyright-year>2020</copyright-year><copyright-holder>John Wily and Sons</copyright-holder><ali:free_to_read/><license><license-p>Panel C is adapted from <xref ref-type="bibr" rid="bib23">Cook et al., 2020</xref> with permission from John Wily and Sons. It is not covered by the CC-BY 4.0 licence and further reproduction of this panel would need permission from the copyright holder.</license-p></license></permissions><permissions><copyright-statement>© 2021, Elsevier</copyright-statement><copyright-year>2021</copyright-year><copyright-holder>Elsevier</copyright-holder><ali:free_to_read/><license><license-p>Panel D is reproduced from Figure 2i in <xref ref-type="bibr" rid="bib115">Taylor et al., 2021</xref> with permission from Elsevier. It is not covered by the CC-BY 4.0 licence and further reproduction of this panel would need permission from the copyright holder.</license-p></license></permissions></fig><p>Our recent re-analysis of pharyngeal nervous system anatomy has shown that rather than segregating these functions over distinct neurons as vertebrates do (<xref ref-type="bibr" rid="bib37">Fung and Vanden Berghe, 2020</xref>), most pharyngeal neurons each combine sensory, inter- and motorneuron function, that is, are polymodal (<xref ref-type="bibr" rid="bib23">Cook et al., 2020</xref>). The 14 distinct pharyngeal neuron types are defined by their unique anatomy, that is, axonal projections, morphology, synaptic connectivity (<xref ref-type="fig" rid="fig1">Figure 1B and C</xref>; <xref ref-type="bibr" rid="bib23">Cook et al., 2020</xref>), and unique functional features (<xref ref-type="bibr" rid="bib7">Avery and Horvitz, 1989</xref>; <xref ref-type="bibr" rid="bib117">Trojanowski et al., 2014</xref>). This anatomical and functional classification has recently been further extended by the description of their unique molecular fingerprint, determined by scRNA transcriptomic analysis (<xref ref-type="bibr" rid="bib115">Taylor et al., 2021</xref>; <xref ref-type="fig" rid="fig1">Figure 1D</xref>). For example, each pharyngeal neuron class is uniquely defined by characteristic signatures of neurotransmitter systems, from acetylcholine (ACh), glutamate (Glu) to serotonin, and by unique combinations of neuropeptide-encoding genes (<xref ref-type="fig" rid="fig1">Figure 1E</xref>). While pharyngeal neurons are clearly different from one another, scRNA profiling has shown that their molecular signatures are more similar to each other than to other neurons in the nervous system (<xref ref-type="bibr" rid="bib115">Taylor et al., 2021</xref>; <xref ref-type="fig" rid="fig1">Figure 1D</xref>).</p><p>One fascinating aspect of the <italic>C. elegans</italic> pharyngeal nervous system is that it has an appearance of what one could imagine an ancestral, primitive nervous system to have looked like. Primitive nervous systems are generally thought to have emerged in the context of monolayers of epithelial cells, with individual cells in such layers specializing into primitive sensory motor-type neurons (<xref ref-type="bibr" rid="bib5">Arendt, 2008</xref>; <xref ref-type="bibr" rid="bib77">Mackie, 1970</xref>; <xref ref-type="bibr" rid="bib119">Varoqueaux and Fasshauer, 2017</xref>). These diffusely organized neurons may have sensed the environment and relayed such sensory information to the other primitive cell type thought to have arisen early in evolution, namely, contractile ‘myoepithelial’ cells that were able to generate motion. The organization of the <italic>C. elegans</italic> pharynx reveals some striking parallels to such a presumptive primitive nervous system: It is also essentially a single monolayer of cells that is organized into a tubular structure and the vast majority of constituent cells are myoepithelial cells (pharyngeal muscle) and polymodal, interconnected sensory/motor neurons (<xref ref-type="bibr" rid="bib23">Cook et al., 2020</xref>; <xref ref-type="bibr" rid="bib79">Mango, 2007</xref>; <xref ref-type="bibr" rid="bib95">Portereiko and Mango, 2001</xref>). Pharyngeal neurons combine sensory, inter- and motor neuron features and are also not localized to ganglia but rather diffusely localized, resembling the architecture of more ancient nerve nets (<xref ref-type="bibr" rid="bib3">Albertson and Thomson, 1976</xref>; <xref ref-type="bibr" rid="bib122">Watanabe et al., 2009</xref>). The interconnectivity of pharyngeal neurons also displays less selectivity than non-pharyngeal neurons, such that mere physical proximity is an almost sufficient criterion for connectivity (<xref ref-type="bibr" rid="bib23">Cook et al., 2020</xref>). Moreover, pharyngeal neurons are closely related to non-neuronal pharyngeal cells by lineage; for example, some muscle and neurons derive from a common mother cell (<xref ref-type="bibr" rid="bib113">Sulston et al., 1983</xref>). The idea of enteric neurons being reflective of an early, primitive state of the nervous system has also been brought forward in the context of comparing enteric nervous systems from widely divergent species (<xref ref-type="bibr" rid="bib39">Furness and Stebbing, 2018</xref>; <xref ref-type="bibr" rid="bib45">Gilbert, 2019</xref>). Specifically, these authors argued that the nerve net-like hydra nervous system displays features of the vertebrate enteric nervous system.</p><p>The self-contained and hypothetically primitive state of the <italic>C. elegans</italic> enteric nervous system, with all its unique features, encouraged us to use this system as a model to probe several concepts of neuronal identity specification that have emerged from the centralized, non-pharyngeal nervous system of <italic>C. elegans</italic>: (1) The first is the concept of terminal selectors, transcription factors that act in a master-regulatory manner to coordinately control the many identity features of a terminally differentiating neuron (<xref ref-type="bibr" rid="bib56">Hobert, 2016</xref>). Are members of terminal gene batteries in each pharyngeal neuron also controlled in a coordinated manner, via terminal selectors? One study in the NSM neurons provided some limited evidence in this regard (<xref ref-type="bibr" rid="bib126">Zhang et al., 2014</xref>), but how broadly this applies throughout the pharyngeal nervous system was less clear. (2) Second, homeodomain transcription factors have a predominant role as terminal selectors of neuronal identity in the non-pharyngeal nervous system (<xref ref-type="bibr" rid="bib57">Hobert, 2021</xref>; <xref ref-type="bibr" rid="bib100">Reilly et al., 2020</xref>). A recent cataloguing of the expression patterns of all homeodomain proteins in the <italic>C. elegans</italic> genome revealed that each one of the <italic>C. elegans</italic>’ 118 neuron classes<italic>,</italic> including the pharyngeal neurons, display a unique combinatorial signature of homeodomain protein expression (<xref ref-type="bibr" rid="bib100">Reilly et al., 2020</xref>). Are all pharyngeal neurons indeed specified by homeodomain protein combinations? (3) Lastly, there is evidence from both <italic>C. elegans</italic> (<xref ref-type="bibr" rid="bib14">Berghoff et al., 2021</xref>; <xref ref-type="bibr" rid="bib93">Pereira et al., 2015</xref>) and other systems (<xref ref-type="bibr" rid="bib19">Brunet and Pattyn, 2002</xref>) that synaptically connected neurons are often specified by the same transcription factor, suggesting that such transcription factors may be involved in assembling neurons in functional circuitry. We have termed such transcription factors ‘circuit organizers’ (<xref ref-type="bibr" rid="bib14">Berghoff et al., 2021</xref>; <xref ref-type="bibr" rid="bib93">Pereira et al., 2015</xref>) and sought to test whether the isolated pharyngeal circuitry is similarly specified by a circuit organizer transcription factor.</p><p>In this paper, we show that all three predictions are fulfilled in the context of the nematode’s pharyngeal/enteric nervous system. We show that a <italic>C. elegans</italic> ortholog of the Sine oculis/Six1/Six2 homeobox gene, <italic>ceh-34</italic>, is expressed in all pharyngeal neurons from their birth throughout their life time. Its expression is induced by the foregut organ selector gene <italic>pha-4/FoxA</italic>. We demonstrate that <italic>ceh-34</italic> initiates and maintains the terminally differentiated state of all synaptically connected pharyngeal neurons, that <italic>ceh-34</italic> is required to assemble and maintain pharyngeal neuron architecture and that in distinct pharyngeal neuron types, <italic>ceh-34</italic> cooperates with distinct homeobox genes to specify and maintain their respective identity. Taken together, our studies further substantiate overarching themes of nervous system development and potentially provide insights into the evolution of nervous systems.</p></sec><sec id="s2" sec-type="results"><title>Results</title><sec id="s2-1"><title>Expression of paralogous genes <italic>ceh-34</italic> and <italic>ceh-33</italic>, the two <italic>C. elegans</italic> Sine oculis/Six1/2 orthologs</title><p>Genome sequence mining revealed several <italic>C. elegans</italic> homologs of the Sine oculis/Six family of homeodomain proteins (<xref ref-type="bibr" rid="bib102">Ruvkun and Hobert, 1998</xref>) whose founding member was first identified in <italic>Drosophila</italic> for its role in eye patterning (<xref ref-type="bibr" rid="bib20">Cheyette et al., 1994</xref>). This specific homeodomain transcription factor family is characterized by the presence of a conserved domain, located N-terminally to the DNA binding homeodomain, the ~150 amino acid-long SIX domain, involved in both protein-DNA, as well as protein-protein interactions (<xref ref-type="bibr" rid="bib73">Kumar, 2009</xref>; <xref ref-type="bibr" rid="bib91">Patrick et al., 2013</xref>). <italic>C. elegans</italic> Six-type homeodomain proteins fall into several, phylogenetically conserved families, the Sine oculis/Six1/2, the Six4/5, and the Six3/6 subfamily (<xref ref-type="bibr" rid="bib33">Dozier et al., 2001</xref>; <xref ref-type="bibr" rid="bib73">Kumar, 2009</xref>). We focus here on the Sine oculis subfamily.</p><p>Through the analysis of multiple nematode genome sequences, we found that nematodes generally contain a single ortholog of the Sine oculis/Six1/2 subfamily of SIX homeodomain proteins, but that this locus has duplicated in the <italic>Caenorhabditis</italic> genus into two immediately adjacent paralogs, <italic>ceh-33</italic> and <italic>ceh-34</italic> (<xref ref-type="fig" rid="fig2">Figure 2</xref>, <xref ref-type="fig" rid="fig2s1">Figure 2—figure supplement 1</xref>). Using a fosmid-based reporter in which the <italic>ceh-33</italic> locus is tagged with <italic>gfp</italic>, we found that the CEH-33 protein shows no expression in the nervous system within or outside the pharynx at any developmental stage. The only observed expression was in a subset of head muscle cells (<xref ref-type="fig" rid="fig2">Figure 2B</xref>).</p><fig-group><fig id="fig2" position="float"><label>Figure 2.</label><caption><title><italic>ceh-34</italic> is expressed in all pharyngeal neurons.</title><p>(<bold>A</bold>) <italic>ceh-33</italic> and <italic>ceh-34</italic> loci showing different alleles and fosmid reporters used in this study. (<bold>B</bold>) Expression of the <italic>ceh-34</italic> CRISPR/Cas-9-engineered reporter allele <italic>ot903</italic> over the course of development. <italic>ceh-33</italic> fosmid reporter (<italic>wgIs575</italic>) shows expression in a subset of head muscle cells. (<bold>C</bold>) Pharynx organ selector <italic>pha-4</italic> controls <italic>ceh-34</italic> expression (as analyzed with the <italic>wgIs524</italic> transgene). Animals were scored at the L1 stage. Presumptive ‘pharyngeal cells’ in <italic>pha-4</italic> mutant are marked with a red <italic>pha-4</italic> promoter fusion (<italic>stIs10077</italic>). Cells co-expressing <italic>ceh-34</italic> and <italic>pha-4</italic> were counted (yellow cells). <italic>ceh-34</italic> expression in head muscle cells, marked with red asterisk, is not affected since they do not express <italic>pha-4</italic>.</p></caption><graphic mime-subtype="tiff" mimetype="image" xlink:href="elife-76003-fig2-v2.tif"/></fig><fig id="fig2s1" position="float" specific-use="child-fig"><label>Figure 2—figure supplement 1.</label><caption><title>Evolution of Sine oculis orthologs in nematodes.</title><p>(<bold>A</bold>) Phylogeny of ceh-33/34 gene duplication in nematodes. Phylogeny based on homeodomains. (<bold>B</bold>) Synteny of the ceh-33/ceh-34 locus across several <italic>Caenorhabditis</italic> species.</p></caption><graphic mime-subtype="tiff" mimetype="image" xlink:href="elife-76003-fig2-figsupp1-v2.tif"/></fig><fig id="fig2s2" position="float" specific-use="child-fig"><label>Figure 2—figure supplement 2.</label><caption><title>Expression of the organ selector <italic>pha-4</italic>.</title><p>(<bold>A</bold>) <italic>pha-4</italic> expression (<italic>stIs10077</italic>) is not affected in <italic>ceh-34(tm3733)</italic> mutants. Animals were scored at the L1 stage. Statistical analysis was performed using unpaired t-test. (<bold>B</bold>) <italic>pha-4</italic> is continuously expressed in pharyngeal neurons. Expression of a CRISPR/Cas9-engineered <italic>pha-4</italic> reporter allele (<italic>ot946</italic>) in green and a <italic>rab-3prom</italic> reporter (<italic>otIs355</italic>) in red in L1 (left), L3 (middle), and adult (right) animals. High magnifications of the anterior bulb provided in the insets at the bottom-left corner of the merged images. Arrows point to pharyngeal neurons expressing both <italic>pha-4</italic> and <italic>rab-3</italic>.</p></caption><graphic mime-subtype="tiff" mimetype="image" xlink:href="elife-76003-fig2-figsupp2-v2.tif"/></fig></fig-group><p>A previously described reporter construct that contains the coding region and 3.8 kb of promoter region of the neighboring <italic>ceh-34</italic> gene showed expression in all pharyngeal neurons (<xref ref-type="bibr" rid="bib54">Hirose et al., 2010</xref>). A fosmid-based reporter shows the same expression pattern (<xref ref-type="bibr" rid="bib100">Reilly et al., 2020</xref>). To further confirm this strikingly selective pattern of neuronal expression and also to examine expression at different developmental stages with the best possible reagent, we used the CRISPR/Cas9 system to engineer a reporter allele of <italic>ceh-34</italic>. This reporter shows the same expression as the fosmid-based reporter in all pharyngeal neurons, but no other neurons (<xref ref-type="fig" rid="fig2">Figure 2B</xref>). The <italic>ceh-34</italic> reporter is turned on in the embryo at around the time of birth of pharyngeal neurons and is maintained in all pharyngeal neurons throughout all larval and adult stages (<xref ref-type="fig" rid="fig2">Figure 2B</xref>).</p><p>The remarkable restriction of <italic>ceh-34</italic> expression within the nervous system to all pharyngeal neurons prompted us to ask whether the Forkhead transcription factor <italic>pha-4</italic>, an organ selector gene involved in early patterning of the pharynx (<xref ref-type="bibr" rid="bib42">Gaudet and Mango, 2002</xref>; <xref ref-type="bibr" rid="bib60">Horner et al., 1998</xref>; <xref ref-type="bibr" rid="bib66">Kalb et al., 1998</xref>; <xref ref-type="bibr" rid="bib78">Mango et al., 1994</xref>), is required for <italic>ceh-34</italic> expression. Crossing a <italic>ceh-34</italic> reporter into <italic>pha-4(q490</italic>) mutant animals, we indeed observed a loss of <italic>ceh-34</italic> expression (<xref ref-type="fig" rid="fig2">Figure 2C</xref>). Conversely, <italic>ceh-34</italic> does not affect <italic>pha-4</italic> expression (<xref ref-type="fig" rid="fig2s2">Figure 2—figure supplement 2A</xref>). The regulation of <italic>ceh-34</italic> by <italic>pha-4</italic> mirrors the effects that <italic>pha-4</italic> has on the expression of other transcription factors that control terminal differentiation of other tissue types in the pharynx, for example, the <italic>ceh-22/NKX</italic> homeobox gene that specifies pharyngeal muscle differentiation (<xref ref-type="bibr" rid="bib121">Vilimas et al., 2004</xref>), or the <italic>hlh-6</italic> bHLH gene that specifies pharyngeal gland differentiation (<xref ref-type="bibr" rid="bib109">Smit et al., 2008</xref>). We furthermore note that a <italic>pha-4</italic> reporter allele that we generated through CRISPR/Cas9 genome engineering is continuously expressed throughout the entire pharyngeal nervous system, at all postembryonic stages (<xref ref-type="fig" rid="fig2s2">Figure 2—figure supplement 2B</xref>), raising the possibility that <italic>pha-4</italic> may not only initiate, but also maintain <italic>ceh-34</italic> expression.</p></sec><sec id="s2-2"><title><italic>ceh-34</italic> controls the expression of diverse neurotransmitter signaling pathways in pharyngeal neurons</title><p>To begin to assess the function of <italic>ceh-34</italic> in enteric nervous system differentiation, we used CRISPR/Cas9 engineering to generate a null allele of the <italic>ceh-34</italic> locus, <italic>ot1014</italic>, in which the entire <italic>ceh-34</italic> locus is deleted (<xref ref-type="fig" rid="fig2">Figure 2A</xref>). Previously described <italic>ceh-34</italic> alleles include a hypomorphic splice site allele, <italic>n4796</italic>, and a small deletion allele, <italic>tm3733</italic> (<xref ref-type="bibr" rid="bib4">Amin et al., 2009</xref>; <xref ref-type="bibr" rid="bib54">Hirose et al., 2010</xref>). In our ensuing mutant analysis, we found <italic>ot1014</italic> to be phenotypically indistinguishable from the <italic>tm3733</italic> deletion allele and we therefore used both alleles interchangeably. Both the <italic>ot1014</italic> and <italic>tm3733</italic> alleles result in a completely penetrant early larval arrest phenotype, as expected from loss of pharynx function and resulting inability to feed.</p><p>We first asked whether <italic>ceh-34</italic> is required for the generation of pharyngeal neurons. Using a <italic>pha-4</italic> reporter that labels all pharyngeal cells, we observed no obvious differences in the number of pharyngeal cells in <italic>ceh-34</italic> mutants (<xref ref-type="fig" rid="fig2s2">Figure 2—figure supplement 2A</xref>). Moreover, the expression of the pan-neuronal genes <italic>ric-4/SNAP25</italic>, <italic>ric-19/ICA1</italic>, <italic>rab-3/RAB3,</italic> and <italic>unc-11/AP180</italic> is unaffected (<xref ref-type="fig" rid="fig3">Figure 3A</xref>), indicating that pharyngeal neurons are generated and properly execute a generic neuronal differentiation program.</p><fig id="fig3" position="float"><label>Figure 3.</label><caption><title>Pharyngeal neurons are generated in <italic>ceh-34</italic> mutants but lose their neurotransmitter identity.</title><p>(<bold>A</bold>) Pictures at the L1 stage showing expression of pan-neuronal reporter transgenes that monitor <italic>ric-4 (otIs350</italic>), <italic>ric-19 (otIs380</italic>), <italic>unc-11 (otIs620</italic>), and <italic>rab-3 (otIs291</italic>) expression. A single focal plane with a subset of pharyngeal neurons marked with red arrows is shown for clarity. (<bold>B</bold>) <italic>ceh-34</italic> affects the expression of neurotransmitter identity genes. Glutamatergic, cholinergic, and serotonergic identity is lost. Reporter transgenes used are <italic>eat-4 (otIs487, otIs558), unc-17 (otIs661), tph-1 (otIs517), cat-1 (otIs221), cat-4 (otIs225), and bas-1 (otIs226</italic>). Animals were scored at the L1 stage. Statistical analysis was performed using Fisher’s exact test or chi-square test. N is indicated within each bar and represents number of neurons scored. (<bold>C</bold>) Circuit diagram summarizing the effect of <italic>ceh-34</italic> on neurotransmitter identity. Nodes are colored to illustrate neurotransmitter identity gene expression. Nodes lose coloring when expression is affected in <italic>ceh-34</italic> mutants (gray indicates partial effect). Edges are colored if the source neuron expresses either <italic>eat-4</italic> (glutamatergic), <italic>unc-17</italic> (cholinergic), or <italic>tph-1</italic> (serotonergic). Edges lose coloring when expression of these genes is affected in the source neuron in <italic>ceh-34</italic> mutants (irrespective of whether the effect is partial or total). Note that in this and ensuing circuit diagrams, the existence of gray edges does not indicate whether those edges are generated properly in <italic>ceh-34</italic> mutants. Directed edges (arrows) represent chemical synapses. Undirected edges (dashed lines) represent electrical synapses. The width of the edge is proportional to the weight of the connection (the number of serial section electron micrographs where a synaptic specialization is observed).</p></caption><graphic mime-subtype="tiff" mimetype="image" xlink:href="elife-76003-fig3-v2.tif"/></fig><p>We next assessed the effect of <italic>ceh-34</italic> on a large collection of neuron type-specific molecular identity features (illustrated in <xref ref-type="fig" rid="fig1">Figure 1E</xref>). To this end, we first focused on the signaling capacities of all pharyngeal neurons. In the vertebrate enteric nervous system, each individual neuron class is distinguished by its unique set of signaling molecules, from classic neurotransmitters to neuropeptides (<xref ref-type="bibr" rid="bib81">Morarach et al., 2021</xref>). The same applies to all neuron classes in the pharyngeal/enteric nervous system of <italic>C. elegans</italic> (<xref ref-type="bibr" rid="bib61">Horvitz et al., 1982</xref>; <xref ref-type="bibr" rid="bib93">Pereira et al., 2015</xref>; <xref ref-type="bibr" rid="bib107">Serrano-Saiz et al., 2013</xref>; <xref ref-type="bibr" rid="bib115">Taylor et al., 2021</xref>). We first considered the three classic neurotransmitters ACh, Glu, and serotonin which are employed in <italic>C. elegans</italic> much like in the enteric nervous system of other species: 7 of the 14 pharyngeal neuron classes use ACh as neurotransmitter, 4 use Glu, and 1 uses serotonin (NSM) (<xref ref-type="bibr" rid="bib61">Horvitz et al., 1982</xref>; <xref ref-type="bibr" rid="bib93">Pereira et al., 2015</xref>; <xref ref-type="bibr" rid="bib107">Serrano-Saiz et al., 2013</xref>). Of those neurotransmitters, serotonin is perhaps the best studied neurotransmitter both in the vertebrate enteric nervous system (<xref ref-type="bibr" rid="bib44">Gershon, 2013</xref>) and in the nematode pharyngeal nervous system (<xref ref-type="bibr" rid="bib61">Horvitz et al., 1982</xref>; <xref ref-type="bibr" rid="bib64">Ishita et al., 2020</xref>; <xref ref-type="bibr" rid="bib112">Song and Avery, 2013</xref>). Acquisition of ACh, Glu, and serotonin neurotransmitter identity features can be visualized through the expression of a number of enzymes and transporters: <italic>unc-17/VAChT</italic> for cholinergic identity, <italic>eat-4/VGluT</italic> for glutamatergic identity, and <italic>tph-1/TPH, cat-1/VMAT, bas-1/AAAD,</italic> and <italic>cat-4/GCH</italic> for serotonergic identity. We examined the expression of all these markers, using various reporter genes, in all pharyngeal neurons of <italic>ceh-34</italic> mutant animals and found that the seven cholinergic, four glutamatergic, and single serotonergic neuron classes fail to acquire their respective neurotransmitter identity (<xref ref-type="fig" rid="fig3">Figure 3B</xref>). We schematize these results in the context of a pharyngeal circuit diagram to illustrate the systemic nature of neurotransmission defects in <italic>ceh-34</italic> mutants (<xref ref-type="fig" rid="fig3">Figure 3C</xref>).</p><p>We note that while in most cases, the effect of <italic>ceh-34</italic> on expression of neurotransmitter systems (as well as other identity markers described in ensuing sections) is fully penetrant and fully expressive, in some cases reporter expression is diminished, but not completely eliminated. At the end of this paper, we describe cofactors for <italic>ceh-34</italic> which may be partially able to compensate for loss of <italic>ceh-34</italic> function.</p><p>As in vertebrate enteric nervous systems (<xref ref-type="bibr" rid="bib34">Drokhlyansky et al., 2020</xref>), pharyngeal neurons also display highly patterned expression of various neurotransmitter receptors (<xref ref-type="bibr" rid="bib115">Taylor et al., 2021</xref>). We analyzed the <italic>ceh-34-</italic>dependence of three representative receptors, the serotonin receptor <italic>ser-7</italic>, the ortholog of vertebrate HTR7, as well as a metabotropic and an ionotropic Glu receptor, <italic>mgl-1</italic> and <italic>glr-2</italic>. Each of these receptors is expressed in specific subsets of pharyngeal neurons and <italic>ser-7</italic> is known to control feeding behavior (<xref ref-type="bibr" rid="bib58">Hobson et al., 2006</xref>; <xref ref-type="bibr" rid="bib111">Song and Avery, 2012</xref>; <xref ref-type="bibr" rid="bib112">Song and Avery, 2013</xref>). Using a combination of reporter transgenes and CRISPR/Cas9-engineered <italic>gfp</italic> reporter alleles, we found that the expression of <italic>mgl-1, glr-2,</italic> and <italic>ser-7</italic> is strongly affected in different pharyngeal neuron types, if not entirely abrogated upon removal of <italic>ceh-34</italic> (<xref ref-type="fig" rid="fig4">Figure 4A–C</xref>).</p><fig id="fig4" position="float"><label>Figure 4.</label><caption><title><italic>ceh-34</italic> affects the expression of receptors for neurotransmitters and neuropeptides.</title><p>(<bold>A</bold>) Representative pictures and quantification showing neurotransmitter receptor expression loss in <italic>ceh-34</italic> mutants. Reporter genes used are transgenes <italic>glr-2 (ivIs26), mgl-1 (otIs341</italic>), and a CRISPR/Cas9-engineered reporter allele for <italic>ser-7 (syb4502</italic>). Animals were scored at the L1 stage. Statistical analysis was performed using Fisher’s exact test or chi-square test. N is indicated within each bar and represents number of neurons scored. (<bold>B</bold>) Representative pictures and quantification showing neuropeptide receptor expression loss in <italic>ceh-34</italic> mutants. Reporter gene used is the CRISPR/Cas9-engineered reporter allele <italic>trhr-1 (syb4453</italic>). Animals were scored at the L1 stage, with a red pan-neuronal marker (<italic>otIs355</italic>) in the background to facilitate scoring. Number of “yellow“ cells (overlap of red pan-neuronal marker and green reporter) within the pharynx were counted. Statistical analysis was performed using unpaired t-test. (<bold>C</bold>) Circuit diagram summarizing the effect of <italic>ceh-34</italic> on neurotransmitter and neuropeptide receptor expression. Nodes lose coloring when expression is affected in <italic>ceh-34</italic> mutants (gray indicates partial effect; <italic>ser-7</italic> and <italic>trhr-1</italic> are colored white in all neurons since identity of neurons with partial effect is not known). See legend to <xref ref-type="fig" rid="fig3">Figure 3</xref> for more information on circuit diagram features.</p></caption><graphic mime-subtype="tiff" mimetype="image" xlink:href="elife-76003-fig4-v2.tif"/></fig></sec><sec id="s2-3"><title><italic>ceh-34</italic> controls diverse neuropeptidergic identities of pharyngeal neurons</title><p>The function of vertebrate enteric nervous systems is modulated by a number of prominent neuropeptidergic signaling systems (<xref ref-type="bibr" rid="bib1">Abot et al., 2018</xref>; <xref ref-type="bibr" rid="bib75">Llewellyn-Smith, 1989</xref>). In some cases, both neuropeptide and receptor are expressed in the vertebrate enteric nervous system, while in others, the peptide is produced elsewhere but acts on neuropeptide receptors located in the enteric nervous system. Likewise, the <italic>C. elegans</italic> pharyngeal nervous system expresses a great diversity of neuropeptides and neuropeptide receptors, including homologs of neuropeptide signaling systems that function in the vertebrate enteric nervous system (<xref ref-type="bibr" rid="bib115">Taylor et al., 2021</xref>). In fact, each pharyngeal neuron expresses a unique combination of neuropeptides and their receptor proteins (<xref ref-type="bibr" rid="bib115">Taylor et al., 2021</xref>; <xref ref-type="fig" rid="fig5">Figure 5</xref>).</p><fig id="fig5" position="float"><label>Figure 5.</label><caption><title><italic>ceh-34</italic> affects neuropeptidergic identity of pharyngeal neurons.</title><p>(<bold>A</bold>) Representative pictures and quantification showing expression of 10 different neuropeptides is affected in <italic>ceh-34</italic> mutants. Reporter genes used are transgenic reporters for <italic>flp-2 (ynIs57), flp-4 (ynIs30), flp-15 (ynIs45), flp-21 (ynIs80), nlp-3 (otIs695), nlp-8 (otIs711</italic>), and <italic>nlp-13 (otIs742</italic>) and CRISPR/Cas9-engineered reporter alleles for <italic>flp-5 (syb4513), flp-28 (syb3207</italic>), and <italic>trh-1 (syb4421</italic>). Animals were scored at the L1 stage. Statistical analysis was performed using Fisher’s exact test, chi-square test, or unpaired t-test. N is indicated within each bar and represents number of neurons scored. (<bold>B</bold>) Circuit diagram summarizing the effect of <italic>ceh-34</italic> on neuropeptide expression. Nodes lose coloring when neuropeptide expression is affected in <italic>ceh-34</italic> mutants (gray indicates partial effect; <italic>flp-5</italic> and <italic>nlp-3</italic> are colored white in all neurons since identity of neurons with partial effect is not known). See legend to <xref ref-type="fig" rid="fig3">Figure 3</xref> for more information on circuit diagram features.</p></caption><graphic mime-subtype="tiff" mimetype="image" xlink:href="elife-76003-fig5-v2.tif"/></fig><p>To test whether <italic>ceh-34</italic> affects the neuron type-specific expression of various neuropeptidergic signaling systems, we first examined the expression of the phylogenetically conservedthyrotropin-releasing hormone (TRH) signaling axis that is important in stimulating gastrointestinal motility in vertebrates (<xref ref-type="bibr" rid="bib1">Abot et al., 2018</xref>). <italic>C. elegans</italic> homologs of either the thyrotropin-releasing hormone (TRH-1) or its receptor (TRHR-1) are expressed in the pharyngeal nervous system (<xref ref-type="bibr" rid="bib63">Hunt-Newbury et al., 2007</xref>; <xref ref-type="bibr" rid="bib118">Van Sinay et al., 2017</xref>), a notion we confirmed and extended with CRISPR/Cas9-engineered reporter alleles, showing that <italic>trh-1</italic> is expressed in the MI, M4, and M5 neurons and <italic>trhr-1</italic> in the M1, M2, M3, and I5 neurons (<xref ref-type="fig" rid="fig4">Figure 4</xref> and <xref ref-type="fig" rid="fig5">Figure 5</xref>). We found that the expression of the <italic>trh-1</italic> and <italic>trhr-1</italic> reporter alleles in these pharyngeal neurons is strongly affected in <italic>ceh-34</italic> mutants (<xref ref-type="fig" rid="fig4">Figure 4</xref> and <xref ref-type="fig" rid="fig5">Figure 5A</xref>).</p><p>In addition to this deeply conserved neuropeptidergic system, we also tested the expression of a cohort of neuropeptides from the FMRFamide family (<italic>flp-2, flp-4, flp-5, flp-15, flp-21, flp-28</italic>) and other miscellaneous neuropeptides (<italic>nlp-3, nlp-8, nlp-13</italic>). The expression of these nine neuropeptides is neuron type-specific, but in aggregate they cover the entire pharyngeal nervous system, often with unique cell type-specific combinations (schematized in <xref ref-type="fig" rid="fig5">Figure 5B</xref>). We found that the expression of all of these nine neuropeptides, analyzed with either reporter transgenes or CRISPR/Cas9 genome-engineered <italic>gfp</italic> reporter alleles, is affected in <italic>ceh-34</italic> mutants (<xref ref-type="fig" rid="fig5">Figure 5A</xref>). We schematize these results again in the context of a pharyngeal circuit diagram (<xref ref-type="fig" rid="fig5">Figure 5B</xref>). Together with our analysis of classic neurotransmitters (ACh, Glu, serotonin) and receptors, we conclude that <italic>ceh-34</italic> is required to endow pharyngeal neurons with their neuron type-specific arsenal of signaling molecules and, hence, that <italic>ceh-34</italic> is a critical specifier of several key aspects of pharyngeal neuron identity and function.</p></sec><sec id="s2-4"><title><italic>ceh-34</italic> is required for sensory receptor expression in the pharyngeal nervous system</title><p>We sought to extend our analysis of <italic>ceh-34</italic> mutants by examining the expression of other molecular features of pharyngeal neurons. Like neurons in the vertebrate enteric nervous system, many of the pharyngeal neurons are likely internal sensory neurons that perceive sensory information to modulate peristaltic movements of the alimentary tract (<xref ref-type="bibr" rid="bib23">Cook et al., 2020</xref>). While the sensory apparatus of pharyngeal neurons is not well understood, there are several candidate sensory receptors expressed in pharyngeal neurons. A gustatory receptor family member, <italic>gur-3</italic>, a possible light receptor (<xref ref-type="bibr" rid="bib17">Bhatla and Horvitz, 2015</xref>), is expressed in two pharyngeal neuron classes and its expression is lost in <italic>ceh-34</italic> mutants (<xref ref-type="fig" rid="fig6">Figure 6A</xref>). Pharyngeal neurons also express the two sole members of the ionotropic sensory receptor family (<xref ref-type="bibr" rid="bib26">Croset et al., 2010</xref>), encoded by <italic>glr-7</italic> and <italic>glr-8</italic> in <italic>C. elegans</italic> (<xref ref-type="bibr" rid="bib18">Brockie et al., 2001</xref>; <xref ref-type="bibr" rid="bib55">Hobert, 2013</xref>). We examined expression of <italic>glr-7</italic> expression, normally observed in six pharyngeal neuron classes (I2, I3, I6, M2, M3, and NSM), in <italic>ceh-34</italic> mutants and found its expression to be completely lost (<xref ref-type="fig" rid="fig6">Figure 6A</xref>). Finally, we analyzed the expression of <italic>str-97</italic>, a putative chemosensory receptor of the GPCR family which we found to be expressed in several pharyngeal neurons (<xref ref-type="bibr" rid="bib120">Vidal et al., 2018</xref>; <xref ref-type="fig" rid="fig6">Figure 6A</xref>). We found that <italic>ceh-34</italic> is required for proper <italic>str-97</italic> expression (<xref ref-type="fig" rid="fig6">Figure 6A</xref>).</p><fig-group><fig id="fig6" position="float"><label>Figure 6.</label><caption><title><italic>ceh-34</italic> affects other identity features of pharyngeal neurons.</title><p>(<bold>A</bold>) Representative pictures and quantification showing sensory receptor expression loss in <italic>ceh-34</italic> mutants. Reporter transgenes used are <italic>glr-7 (otIs809), gur-3 (nIs780</italic>), and <italic>str-97 (otIs716). str-97 (otIs716</italic>) is expressed in M1 in adult animals, but also in M4 in first larval stage animals. Expression in M4 is lost in <italic>ceh-34</italic> mutant, but expression in M1 could not be reliably scored. Animals were scored at the L1 stage. Statistical analysis was performed using Fisher’s exact test. N is indicated within each bar and represents number of neurons scored. (<bold>B</bold>) Representative pictures and quantification showing effect of <italic>ceh-34</italic> on antimicrobial defense genes. Reporter genes used are <italic>spp-12 (otIs868</italic>) and CRISPR/Cas9-engineered reporter alleles for <italic>flr-2 (syb4861) and htrl-1 (syb4895</italic>). Animals were scored at the L1 stage. Statistical analysis was performed using Fisher’s exact test, chi-square test, or unpaired t-test. N is indicated within each bar and represents number of neurons scored. (<bold>C</bold>) Representative pictures and quantification showing effect of <italic>ceh-34</italic> on pan-pharyngeal genes. Reporter gene is the CRISPR/Cas9-engineered reporter allele <italic>kin-36 (syb4677</italic>). Animals were scored at the L1 stage. Statistical analysis was performed using unpaired t-test.</p></caption><graphic mime-subtype="tiff" mimetype="image" xlink:href="elife-76003-fig6-v2.tif"/></fig><fig id="fig6s1" position="float" specific-use="child-fig"><label>Figure 6—figure supplement 1.</label><caption><title>Summary of previous single cell transcriptomic analysis of genes broadly expressed in pharyngeal neurons.</title><p>scRNA data was extracted from the Cengen App and displayed in a heatmap format, as previously described (<xref ref-type="bibr" rid="bib115">Taylor et al., 2021</xref>). The <italic>F13H10.6</italic> gene was included here as well because of its striking expression outside the pharyngeal nervous system, in what appear to be exclusively sensory neurons, in line with most if not all pharyngeal neurons also having sensory function. Conversely, previously identified pan-sensory genes (e.g. cilium-related genes) do not show expression in pharyngeal neurons.</p></caption><graphic mime-subtype="tiff" mimetype="image" xlink:href="elife-76003-fig6-figsupp1-v2.tif"/></fig><fig id="fig6s2" position="float" specific-use="child-fig"><label>Figure 6—figure supplement 2.</label><caption><title><italic>ceh-34</italic> affects <italic>ceh-28</italic> expression.</title><p>Representative pictures and quantification are shown. Reporter gene used is ceh-28 (nIs175). Twenty percent of worms show a cell outside the pharynx ectopically expressing ceh-28. Animals were scored at the L1 stage. Statistical analysis was performed using Fisher’s exact test. N is indicated within each bar and represents number of neurons scored.</p></caption><graphic mime-subtype="tiff" mimetype="image" xlink:href="elife-76003-fig6-figsupp2-v2.tif"/></fig></fig-group></sec><sec id="s2-5"><title><italic>ceh-34</italic> is required for the expression of antimicrobial defense machinery</title><p>One deeply conserved feature of the gut and its associated nervous system is its engagement in antimicrobial defense, either directly through the release of antimicrobial peptides or through the employment of signaling systems that activate the immune system (<xref ref-type="bibr" rid="bib70">Klimovich and Bosch, 2018</xref>; <xref ref-type="bibr" rid="bib83">Muniz et al., 2012</xref>). Similar defense strategies operate in <italic>C. elegans</italic> (<xref ref-type="bibr" rid="bib30">Dierking et al., 2016</xref>). Aside from the epithelial cells of the intestine, the pharyngeal nervous system appears to play a direct role in these microbial control mechanisms, as inferred by the pharyngeal neuron expression of specific proteins implicated in antimicrobial defense. For example, pharyngeal neurons express a hormone, FLR-2, homologous to glycoprotein hormone alpha subunit, that signals to the intestine to orchestrate antimicrobial defense (<xref ref-type="bibr" rid="bib89">Oishi et al., 2009</xref>). Pharyngeal neurons also secrete pore-forming polypeptides that directly kill bacteria, such as the SPP-12 protein (<xref ref-type="bibr" rid="bib59">Hoeckendorf et al., 2012</xref>), as well as a defensin-type antimicrobial peptide, ABF-2 and fungal-induced peptides (FIPR proteins; <xref ref-type="bibr" rid="bib68">Kato et al., 2002</xref>; <xref ref-type="bibr" rid="bib115">Taylor et al., 2021</xref>). Our scRNA transcriptome analysis (<xref ref-type="bibr" rid="bib115">Taylor et al., 2021</xref>) revealed pharyngeal neuron expression of another saposin-related secreted protein, which we named <italic>htrl-1</italic> (see Materials and methods). We visualized expression of these signaling molecules, using a promoter fusion for <italic>spp-12</italic> (<xref ref-type="bibr" rid="bib59">Hoeckendorf et al., 2012</xref>) and CRISPR/Cas9-engineered <italic>gfp</italic> reporter alleles for <italic>flr-2</italic> and <italic>htrl-1</italic> (<xref ref-type="fig" rid="fig6">Figure 6B</xref>). We found that the <italic>spp-12</italic> reporter is expressed in I4 and M4 neurons, the <italic>flr-2::SL2::gfp::h2b</italic> reporter allele is expressed in five pharyngeal neuron classes (I4, I5, M1, M4, and M5), and the <italic>htrl-1::SL2::gfp::h2b</italic> reporter allele is expressed in all pharyngeal neurons (and in all other pharyngeal cells, but nowhere outside the pharynx at the L1 stage; <xref ref-type="fig" rid="fig6">Figure 6B</xref>). A notable feature of the extrapharyngeal expression of the <italic>flr-2</italic> reporter allele is expression in the AVL and DVB neurons (<xref ref-type="fig" rid="fig6">Figure 6B</xref>), the only extrapharyngeal neurons of the <italic>C. elegans</italic> nervous system that innervate gut tissue (not the foregut, but the midgut; <xref ref-type="bibr" rid="bib124">White et al., 1986</xref>). Crossing these reporters into a <italic>ceh-34</italic> mutant background, we found that expression of all three genes (<italic>spp-12, flr-2, htrl-1</italic>) is severely reduced or eliminated in pharyngeal neurons (<xref ref-type="fig" rid="fig6">Figure 6B</xref>).</p></sec><sec id="s2-6"><title><italic>ceh-34</italic> is required for the expression of pan-pharyngeal nervous system genes</title><p>In addition to investigating the <italic>ceh-34</italic>-dependence of genes that fall into specific functional categories, we also sought to capitalize on the recently released single cell transcriptome profiling of the entire <italic>C. elegans</italic> nervous system that included the entire pharyngeal nervous system (<xref ref-type="bibr" rid="bib115">Taylor et al., 2021</xref>). This analysis had shown that the molecular signatures of pharyngeal neurons are more similar to each other than to other neurons in the nervous system (<xref ref-type="bibr" rid="bib115">Taylor et al., 2021</xref>; <xref ref-type="fig" rid="fig1">Figure 1D</xref>). This pattern is driven, in part, by a number of previously entirely uncharacterized genes with very broad, if not pan-pharyngeal nervous system expression (but no expression in non-pharyngeal neurons), including the above-mentioned saposin-related <italic>htrl-1</italic> gene, small cell surface proteins (e.g. C54E4.4) and a novel receptor tyrosine kinase, which we named <italic>kin-36</italic> (<xref ref-type="fig" rid="fig6s1">Figure 6—figure supplement 1</xref>). To confirm this expression pattern, we tagged the <italic>kin-36</italic> locus with a <italic>gfp::H2B::SL2</italic> cassette at its 5’ end, using CRISPR/Cas9 genome engineering. We found that <italic>kin-36</italic> indeed displays pan-pharyngeal neuron expression; expression is also observed in all other pharyngeal cell types, but no cell types outside the pharynx, except some unidentified vulval cells (<xref ref-type="fig" rid="fig6">Figure 6C</xref>). Crossing the <italic>kin-36</italic> reporter allele into <italic>ceh-34</italic> mutants, we observed what appears to be selective loss of <italic>kin-36</italic> expression from many, albeit not all pharyngeal neurons, a similar effect to what we observed for <italic>htrl-1</italic> (<xref ref-type="fig" rid="fig6">Figure 6B and C</xref>).</p><p>We conclude that <italic>ceh-34</italic> is required for the adoption of a broad palette of individual molecular features of all pharyngeal neurons, consistent with a role as a terminal selector of neuronal identity of all pharyngeal neurons. Like other terminal selectors, <italic>ceh-34</italic> only affects neuron type-specific features, but not features that are expressed by all neurons throughout the nervous system.</p></sec><sec id="s2-7"><title><italic>ceh-34</italic> is continuously required to maintain the differentiated and functional state of enteric neurons</title><p>The effect of <italic>ceh-34</italic> on terminal marker expression and its continuous expression throughout the life of all pharyngeal neurons suggests that, like other terminal selectors in the non-pharyngeal nervous system, <italic>ceh-34</italic> may not only initiate but also maintain the terminally differentiated state. To test this possibility, we generated a conditional <italic>ceh-34</italic> allele that allowed us to deplete CEH-34 protein postdevelopmentally. To this end, we inserted an auxin-inducible degron (AID) (<xref ref-type="bibr" rid="bib127">Zhang et al., 2015</xref>) into the <italic>ceh-34</italic> locus using CRISPR/Cas9 genome engineering. Together with a ubiquitously expressed <sub>At</sub>TIR1<sup>F79G</sup> ubiquitin ligase that recognizes the degron (<italic>rps-28</italic> driver; <italic>cshIs140</italic>; <xref ref-type="bibr" rid="bib53">Hills-Muckey et al., 2022</xref>), this approach allows for temporal depletion of CEH-34 protein through addition of an auxin derivative (5-Ph-IAA) to the worm diet (<xref ref-type="fig" rid="fig7">Figure 7A and B</xref>). Postembryonic 5-Ph-IAA addition at either larval or adult stages resulted in downregulation of four tested markers for the differentiated state of different pharyngeal neuron classes, <italic>eat-4/VGluT, unc-17/VAChT, ser-7,</italic> and <italic>spp-12</italic> (<xref ref-type="fig" rid="fig7">Figure 7B and C</xref>). These effects are not as strong as in null mutants, but this is likely due to incomplete CEH-34 protein depletion, since constitutive 5-Ph-IAA exposure from parental stages throughout all developmental stages also produces only limited defects in expression of these markers.</p><fig id="fig7" position="float"><label>Figure 7.</label><caption><title><italic>ceh-34</italic> is continuously required to maintain gene expression and function of pharyngeal neurons.</title><p>(<bold>A</bold>) Schematic of the AIDv2 system (<xref ref-type="bibr" rid="bib53">Hills-Muckey et al., 2022</xref>). Skp1, Cul1, Rbx1, and E2 are phylogenetically conserved components of the E3 ligase complex. TIR1<sup>F79G</sup> is a modified plant-specific substrate-recognizing subunit of the E3 ligase complex. In the presence of the auxin analog (5-Ph-IAA), the enzyme TIR1<sup>F79G</sup> binds to the AID fused to a protein of interest, leading to ubiquitination and proteasomal degradation of the targeted protein. (<bold>B</bold>) Schematic depicting the 5-Ph-IAA treatment. Synchronized populations of worms at the L1 and young adult stage were transferred onto 5-Ph-IAA-coated plates and scored 48 hr later. Worms were expressing TIR1<sup>F79G</sup> ubiquitously under the <italic>rps-28</italic> promoter (cshIs140). The <italic>ceh-34</italic> locus was tagged with <italic>mNG::AID (ot903</italic>). (<bold>C</bold>) <italic>ceh-34</italic> is required for maintained expression of identity genes. Reporter genes used are <italic>spp-12 (otIs868</italic>) and CRISPR/Cas-9-engineered reporter alleles for <italic>eat-4 (syb4257</italic>), <italic>unc-17 (syb4491</italic>), and <italic>ser-7 (syb4502</italic>). Since <italic>ceh-34::mNG::AID (ot903</italic>) and reporter genes scored are all fluorescent green, and this was obscuring the scoring on ethanol conditions, the control conditions are reporter genes on their own treated with 5-Ph-IAA. Representative pictures of larval depletion are shown on the left and quantification for larval and adult depletion is shown on the right. Quantification is only shown for neurons that were affected. Neurons unaffected by temporally controlled 5-Ph-IAA addition are also unaffected by constitute 5-Ph-IAA addition, indicating an inability to completely deplete CEH-34 protein. Statistical analysis was performed using unpaired t-test, Fisher’s exact test, or chi-square test. N is indicated within each bar and represents number of neurons scored. (<bold>D</bold>) <italic>ceh-34</italic> is required for maintained pharyngeal function. Larval and adult <italic>ceh-34</italic> depletion results in decreased pharyngeal pumping. Statistical analysis was performed using two-way ANOVA.</p></caption><graphic mime-subtype="tiff" mimetype="image" xlink:href="elife-76003-fig7-v2.tif"/></fig><p>We also assessed the functional consequences of CEH-34 protein depletion in adult animals, as well as larval stage animals. Using again the AID approach, we found that postembryonic CEH-34 depletion at either larval or adult stages results in substantial defects in pharyngeal pumping, as expected from a disruption of enteric nervous system function (<xref ref-type="fig" rid="fig7">Figure 7D</xref>). We conclude that <italic>ceh-34</italic> is required to maintain differentiated features of pharyngeal neurons and therefore fulfills another key criterion to classify as a terminal selector of pharyngeal neuron identity.</p></sec><sec id="s2-8"><title>Pharyngeal nervous system architecture is severely disorganized in <italic>ceh-34</italic> mutants</title><p>We further extended our analysis of <italic>ceh-34</italic> function by analyzing the anatomy of pharyngeal neuron circuitry in <italic>ceh-34</italic> mutants. This analysis is particularly important in light of the observation that, both in <italic>C. elegans</italic> (<xref ref-type="bibr" rid="bib14">Berghoff et al., 2021</xref>; <xref ref-type="bibr" rid="bib93">Pereira et al., 2015</xref>) and in vertebrates (<xref ref-type="bibr" rid="bib19">Brunet and Pattyn, 2002</xref>), several instances have been described in which synaptically interconnected, but otherwise distinct neurons express the same transcription factor. Such observation suggests that these transcription factors may have a role in assembling neurons into functional circuitry. <italic>ceh-34</italic> represents a particularly extreme version of this scenario, because all <italic>ceh-34(+</italic>) neurons are heavily synaptically interconnected and only make a single robust synaptic contact to the rest of the <italic>C. elegans</italic> nervous system (<xref ref-type="fig" rid="fig1">Figure 1C</xref>; <xref ref-type="bibr" rid="bib23">Cook et al., 2020</xref>). To assess whether <italic>ceh-34</italic> not only specifies terminal molecular properties of pharyngeal neurons, but also organizes overall circuit architecture, we examined pharyngeal nervous system architecture using fluorescent reporter constructs. Such analysis is complicated by the fact that genes that are selectively expressed in <italic>ceh-34(+</italic>) neurons, and hence could serve as drivers for a fluorescent reporter, are turned off in <italic>ceh-34</italic> null mutant animals, thereby preventing an easy visualization of individual axonal tracts or synaptic contacts. However, we found that the <italic>ceh-34</italic> promoter itself is still expressed until the first larval stage in <italic>ceh-34</italic> null mutants, when these animals arrest development. This <italic>ceh-34</italic> promoter transgene (<italic>otIs762</italic>) reveals that although their identity is not properly specified, as described above, pharyngeal neurons retain the capability to grow neuronal projections in <italic>ceh-34</italic> mutants; however, axonal tracts are severely disorganized (<xref ref-type="fig" rid="fig8">Figure 8A</xref>).</p><fig-group><fig id="fig8" position="float"><label>Figure 8.</label><caption><title><italic>ceh-34</italic> affects the assembly of pharyngeal circuitry.</title><p>(<bold>A</bold>) <italic>ceh-34</italic> null mutants display disorganized axodendritic projections. Axodendritic projections were scored as a whole rather than by individual neuron because with all the pharyngeal neurons being labeled it was difficult to assign specific projections to individual neurons. Projections were classified as defective only when obviously deviating from the wild-type path. Representative pictures and quantification are shown. Reporter gene is <italic>ceh-34</italic> (<italic>otIs762</italic>). Animals were scored at the L1 stage. Statistical analysis was performed using Fisher’s exact test. N is indicated within each bar and represents number of worms. (<bold>B</bold>) <italic>ceh-34</italic> null mutants show disorganized pharyngeal nerve ring presynaptic specializations as visualized with CLA-1 puncta. Representative pictures are shown. Quantification (right panels) shows GFP fluorescent intensity profiles along the anterior posterior axis. Reporter gene is <italic>otIs785</italic>. Animals were scored at the L1 stage. (<bold>C</bold>) <italic>ceh-34(n4796</italic>) hypomorph mutants show axonal defects in NSM (top panel) and I5 (bottom panel). Representative pictures and quantification are shown. For NSM, the ventral, dorsal, and thin projection (not visible in picture) were scored separately (graph on the left) and then data was pulled together to indicate the percentage of worms showing any defect (graph on the right). Reporter genes used are <italic>tph-1</italic> (<italic>zdIs13</italic>) and <italic>unc-4</italic> (<italic>otEx7503</italic>). Animals were scored at the L4 stage. Statistical analysis was performed using Fisher’s exact test. N is indicated within each bar and represents number of neurons or number of worms. (<bold>D</bold>) <italic>ceh-34</italic> affects expression of the axon guidance cue <italic>slt-1</italic> (<italic>kyIs174</italic>). Representative pictures and quantification are shown. Animals were scored at the L1 stage. Statistical analysis was performed using Fisher’s exact test. N is indicated within each bar and represents number of neurons scored. (<bold>E</bold>) <italic>ceh-34</italic> affects expression of CRISPR/Cas9-engineered <italic>gfp</italic> reporter alleles of <italic>rig-3 (syb4763</italic>) and <italic>rig-6 (syb4729</italic>), two Ig superfamily members. <italic>rig-3</italic> and <italic>rig-6</italic> are expressed in almost all pharyngeal neurons plus many other cells within and outside the pharynx. Worms were scored with a red pan-neuronal marker (<italic>otIs355</italic>) or a red <italic>ceh-34promoter</italic> fusion (<italic>stIs10447</italic>) in the background to facilitate scoring. Number of yellow cells were counted within the pharynx. Animals were scored at the L1 stage. Statistical analysis was performed using unpaired t-test.</p></caption><graphic mime-subtype="tiff" mimetype="image" xlink:href="elife-76003-fig8-v2.tif"/></fig><fig id="fig8s1" position="float" specific-use="child-fig"><label>Figure 8—figure supplement 1.</label><caption><title><italic>ceh-34</italic> is required to maintain synapse organization in the pharyngeal nervous system.</title><p>Synchronized population of worms at the L1 or young adult stage were transferred onto ethanol or 5-Ph-IAA-coated plates and scored 48 hr later. Worms were expressing TIR1F79G ubiquitously under the <italic>rps-28</italic> promoter (<italic>cshIs140</italic>). The <italic>cla-1</italic> reporter gene is cla-1 <italic>otIs785</italic>. Representative pictures and quantification are shown. Orange bar indicates the region that was quantified. Statistical analysis was performed using unpaired t-test.</p></caption><graphic mime-subtype="tiff" mimetype="image" xlink:href="elife-76003-fig8-figsupp1-v2.tif"/></fig><fig id="fig8s2" position="float" specific-use="child-fig"><label>Figure 8—figure supplement 2.</label><caption><title>Axonal defects in <italic>slt-1</italic> mutants.</title><p>(<bold>A</bold>) Effects of <italic>slt-1</italic> on the I2/I4 neurons. Orange arrows indicate position of pharyngeal nerve ring. Blue arrow indicates ectopic projection. The <italic>gur-3</italic> reporter array is <italic>nIs780</italic>. (<bold>B</bold>) Effects of slt-1 on the M1 neuron. Orange arrow indicate shortened M1 process, which normally extends to the anterior end of the pharynx. The <italic>str-97</italic> reporter array is <italic>otIs716</italic>. Representative images and quantification are shown. Animals were scored at the L4 stage. Statistical analysis was performed using chi-square test. N is indicated within each bar and represents number of neurons scored.</p></caption><graphic mime-subtype="tiff" mimetype="image" xlink:href="elife-76003-fig8-figsupp2-v2.tif"/></fig></fig-group><p>We also expressed the cytoplasmically localized TagRFP reporter together with a synaptically localized, GFP-tagged CLA-1/Clarinet protein (a synaptic active zone marker; <xref ref-type="bibr" rid="bib125">Xuan et al., 2017</xref>) under control of the <italic>ceh-34</italic> promoter. In wild-type animals, this transgene (<italic>otIs785</italic>) reveals (1) the axonal tracts of the pharyngeal nervous system and (2) synaptic structures that are strongly enriched in the pharyngeal nerve ring (<xref ref-type="fig" rid="fig8">Figure 8B</xref>). In <italic>ceh-34</italic> null mutants, we observed not only a disruption of axonal tract anatomy, but a severe disorganization of presynaptic clusters throughout the entire pharyngeal nervous system (<xref ref-type="fig" rid="fig8">Figure 8B</xref>).</p><p>Using the CLA-1 synaptic marker, we also asked whether CEH-34 is continuously required to maintain synaptic architecture postembryonically (i.e. after the time when synaptic connections initially form). To this end, we again made use of the AID system and removed CEH-34::mNG::AID either throughout larval stages or in the adult stage. In both cases, we found that such depletion resulted in synaptic clusters becoming disorganized, such that ectopic presynaptic clusters form at ectopic locations in the isthmus of the pharynx (<xref ref-type="fig" rid="fig8s1">Figure 8—figure supplement 1</xref>).</p><p>Lastly, we made use of a mild <italic>ceh-34</italic> hypomorphic allele, <italic>n4796</italic> (<xref ref-type="bibr" rid="bib54">Hirose et al., 2010</xref>). In <italic>ceh-34(n4796</italic>) animals, the expression of many molecular markers for individual pharyngeal neurons are not affected, allowing to visualize their morphology. Focusing on two neuron types, NSM and I5, we found that in both types, specific axons branches fail to form in <italic>ceh-34(n4796</italic>) animals (<xref ref-type="fig" rid="fig8">Figure 8C</xref>). We conclude that <italic>ceh-34</italic> is required to establish and maintain proper pharyngeal nervous system architecture.</p></sec><sec id="s2-9"><title><italic>ceh-34</italic> affects the expression of molecules involved in proper wiring of the pharyngeal nervous system</title><p>To further explore how <italic>ceh-34</italic> may affect pharyngeal nervous system architecture, we considered the expression of molecules with potential or explicitly demonstrated roles in axon guidance, fasciculation, and/or synapse formation. A genetic analysis of axon guidance and circuit formation has only been conducted in a small number of pharyngeal neurons, mainly the M2 and NSM neuron classes (<xref ref-type="bibr" rid="bib94">Pilon, 2008</xref>). In both neuron classes, the SLT-1 axon guidance cue, the <italic>C. elegans</italic> ortholog of Slit, has been found to be required for proper axon guidance (<xref ref-type="bibr" rid="bib9">Axäng et al., 2008</xref>; <xref ref-type="bibr" rid="bib98">Rauthan et al., 2007</xref>). We extended this phenotypic characterization, finding that other pharyngeal neurons also display axon pathfinding defects in <italic>slt-1</italic> mutants (<xref ref-type="fig" rid="fig8s2">Figure 8—figure supplement 2</xref>). To examine potential links between <italic>slt-1</italic> and <italic>ceh-34,</italic> we made use of a promoter::gfp fusion that captures the entire upstream intergenic region of the <italic>slt-1</italic> locus (<xref ref-type="bibr" rid="bib50">Hao et al., 2001</xref>) and which shows selective expression in seven pharyngeal neuron classes (I2, I6, M1, M2, M4, M5, and MI) at the first larval stage. We found that <italic>slt-1</italic> expression is strongly affected in <italic>ceh-34</italic> mutants (<xref ref-type="fig" rid="fig8">Figure 8D</xref>).</p><p>Effects of <italic>ceh-34</italic> on molecules potentially involved in circuit formation are not restricted to <italic>slt-1</italic>. Two Ig superfamily members, <italic>rig-3</italic> and <italic>rig-6</italic> (the sole <italic>C. elegans</italic> ortholog of contactin), have previously been implicated in axon outgrowth and synapse function in the <italic>C. elegans</italic> nervous system (<xref ref-type="bibr" rid="bib11">Babu et al., 2011</xref>; <xref ref-type="bibr" rid="bib16">Bhardwaj et al., 2020</xref>; <xref ref-type="bibr" rid="bib67">Katidou et al., 2013</xref>; <xref ref-type="bibr" rid="bib69">Kim and Emmons, 2017</xref>) and promoter fusion transgenes have indicated their expression in pharyngeal neurons (<xref ref-type="bibr" rid="bib105">Schwarz et al., 2009</xref>). We used CRISPR/Cas9 to tag both loci with <italic>gfp</italic> and found that both genes are broadly expressed in many pharyngeal neurons (<xref ref-type="fig" rid="fig1">Figures 1E</xref> and <xref ref-type="fig" rid="fig8">8E</xref>). <italic>ceh-34</italic> affects the pharyngeal neuron expression of both <italic>rig-3</italic> and <italic>rig-6</italic> reporter alleles (<xref ref-type="fig" rid="fig8">Figure 8E</xref>).</p></sec><sec id="s2-10"><title>The Six homeodomain cofactor, Eyes absent/Eya, shows limited cooperation with <italic>ceh-34</italic></title><p>To gain further insights into how CEH-34 patterns the identity of a wide array of distinct pharyngeal neuron types, we considered the involvement of cell type-specific cofactors. As a first step, we considered the EYes Absent/EYA protein, a phylogenetically conserved transcriptional co-activator of specific subsets of Six homeodomain proteins (<xref ref-type="bibr" rid="bib88">Ohto et al., 1999</xref>; <xref ref-type="bibr" rid="bib91">Patrick et al., 2013</xref>; <xref ref-type="bibr" rid="bib114">Tadjuidje and Hegde, 2013</xref>). The <italic>C. elegans</italic> ortholog of Eyes absent, called <italic>eya-1</italic> (<xref ref-type="bibr" rid="bib40">Furuya et al., 2005</xref>)<italic>,</italic> also directly physically interacts with CEH-34 protein (<xref ref-type="bibr" rid="bib4">Amin et al., 2009</xref>; <xref ref-type="bibr" rid="bib54">Hirose et al., 2010</xref>). We first examined <italic>eya-1</italic> expression in pharyngeal neurons using a genomic fragment that contains the entire, <italic>gfp-</italic>tagged <italic>eya-1</italic> locus (<xref ref-type="bibr" rid="bib40">Furuya et al., 2005</xref>). We observed expression in all pharyngeal neurons throughout all larval and adult stages, a phenocopy of the <italic>ceh-34</italic> expression pattern (<xref ref-type="fig" rid="fig9">Figure 9A</xref>), that is also corroborated by our recent scRNA analysis (<xref ref-type="fig" rid="fig6s1">Figure 6—figure supplement 1</xref>; <xref ref-type="bibr" rid="bib115">Taylor et al., 2021</xref>). Moreover, we found that <italic>eya-1</italic> expression requires <italic>ceh-34</italic> function, suggesting that <italic>ceh-34</italic> acts in a feedforward configuration to induce its own transcriptional cofactor (<xref ref-type="fig" rid="fig9">Figure 9B</xref>).</p><fig id="fig9" position="float"><label>Figure 9.</label><caption><title>Limited involvement of <italic>eya-1</italic> in pharyngeal neuron identity specification.</title><p>(<bold>A</bold>) <italic>eya-1</italic> is expressed in all pharyngeal neurons throughout the life of the worm. Images of L1 and adult worms showing co-localization of <italic>eya-1</italic> expression (<italic>nIs352</italic>) with the pan-neuronal gene <italic>rab-3</italic> (<italic>otIs355</italic>) in pharyngeal neurons. (<bold>B</bold>) <italic>eya-1</italic> expression is regulated by <italic>ceh-34</italic>. Representative pictures and quantification are shown. Reporter gene is <italic>eya-1</italic> (<italic>nIs352</italic>). Animals were scored at the L1 stage. Statistical analysis was performed using Fisher’s exact test. N is indicated within each bar and represents number of worms scored. (<bold>C</bold>) <italic>eya-1</italic> mutant animals show defects in neurotransmitter identity specification. Representative images and quantification are shown for <italic>unc-17 (otIs661), eat-4 (otIs487</italic>), and <italic>tph-1 (otIs517</italic>). Animals were scored at the L4 stage. Statistical analysis was performed using Fisher’s exact test. N is indicated within each bar and represents number of neurons scored.</p></caption><graphic mime-subtype="tiff" mimetype="image" xlink:href="elife-76003-fig9-v2.tif"/></fig><p>We analyzed the function of <italic>eya-1</italic> in the context of pharyngeal neuron specification. Animals that carry a deletion of a part of the <italic>eya-1</italic> locus, <italic>ok654,</italic> display pharyngeal neuron specification defects, albeit much milder than those observed in <italic>ceh-34</italic> null mutant animals (<xref ref-type="fig" rid="fig9">Figure 9C</xref>). The larval arrest phenotype of <italic>ceh-34</italic> null mutants is also more penetrant than that of <italic>eya-1</italic> mutants, which are very slow growing, but still homozygous viable (<xref ref-type="bibr" rid="bib40">Furuya et al., 2005</xref>). To exclude the possibility that the <italic>ok654</italic> allele is not a null allele, we used CRISPR/Cas9 to generate a null allele in which the entire locus is deleted. Animals carrying this deletion allele (<italic>ot1197</italic>) display phenotypes that are indistinguishable from those of <italic>ok654</italic> animals. They are still homozygous viable, albeit as slowly growing as <italic>ok654</italic> animals, and they display very similar, limited neuronal cell fate marker defects (<xref ref-type="fig" rid="fig9">Figure 9C</xref>). Given the milder spectrum of <italic>eya-1</italic> defects compared to <italic>ceh-34</italic> null mutants, we conclude that <italic>ceh-34</italic> may be able to partly function without <italic>eya-1</italic>.</p><p>In other organisms, Dachshund proteins are components of Sine oculis/Eya complexes in several cellular contexts (<xref ref-type="bibr" rid="bib49">Hanson, 2001</xref>). However, the sole <italic>C. elegans</italic> ortholog of Dachshund is not expressed in pharyngeal neurons (<xref ref-type="bibr" rid="bib21">Colosimo et al., 2004</xref>; <xref ref-type="bibr" rid="bib115">Taylor et al., 2021</xref>) and <italic>dac-1</italic> null mutants also do not display the larval growth/arrest phenotype characteristic of <italic>ceh-34</italic> and <italic>eya-1</italic> mutants (<xref ref-type="bibr" rid="bib21">Colosimo et al., 2004</xref>). While these observation do not entirely rule out a function for DAC-1 in pharyngeal neurons, it appears unlikely that DAC-1 is an essential cofactor of CEH-34.</p></sec><sec id="s2-11"><title><italic>ceh-34</italic> cooperates with a multitude of other homeobox genes to specify distinct pharyngeal neuron types</title><p>How does <italic>ceh-34</italic> activate distinct genes in different pharyngeal neuron types? One obvious possibility is that <italic>ceh-34</italic> cooperates with neuron type-specific cofactors in neuron type-specific terminal selector complexes to drive specific fates. As candidates for such cofactors, we considered homeobox genes, for two reasons: (1) like any other neuron in the <italic>C. elegans</italic> nervous system, each individual pharyngeal neuron expresses a unique combination of homeobox genes, in addition to pan-pharyngeal <italic>ceh-34</italic> (<xref ref-type="bibr" rid="bib100">Reilly et al., 2020</xref>); (2) previous studies had already implicated a few homeobox genes in controlling some select functional or molecular aspects of individual pharyngeal neurons (<xref ref-type="bibr" rid="bib6">Aspöck et al., 2003</xref>; <xref ref-type="bibr" rid="bib36">Feng and Hope, 2013</xref>; <xref ref-type="bibr" rid="bib82">Mörck et al., 2004</xref>; <xref ref-type="bibr" rid="bib96">Ramakrishnan and Okkema, 2014</xref>; <xref ref-type="bibr" rid="bib99">Ray et al., 2008</xref>; <xref ref-type="bibr" rid="bib126">Zhang et al., 2014</xref>). For example, the homeobox gene <italic>ceh-2,</italic> the <italic>C. elegans</italic> ortholog of vertebrate EMX and <italic>Drosophila</italic> Ems, is required for proper function of the M3 neuron, but effects of <italic>ceh-2</italic> on molecular aspects of M3 neuron differentiation had not been reported (<xref ref-type="bibr" rid="bib6">Aspöck et al., 2003</xref>). We therefore set out to analyze homeobox gene function throughout the pharyngeal nervous system and to examine potential interactions of <italic>ceh-34</italic> with other homeobox genes.</p><sec id="s2-11-1"><title>NSM neurons</title><p>To ask whether distinct pharyngeal neuron type-specific homeobox genes cooperate with <italic>ceh-34</italic> in distinct neuronal cell types throughout the pharyngeal nervous system<italic>,</italic> we made use of a hypomorphic <italic>ceh-34</italic> allele, <italic>n4796</italic> (<xref ref-type="bibr" rid="bib54">Hirose et al., 2010</xref>). Unlike the <italic>ceh-34</italic> null allele, which results in very strong expression defects of all NSM molecular markers (<xref ref-type="fig" rid="fig3">Figures 3</xref>—<xref ref-type="fig" rid="fig6">6</xref>), the <italic>n4796</italic> allele displays only subtle if any marker expression effects on its own (<xref ref-type="fig" rid="fig10">Figure 10A</xref>). However, when combined with a mutant allele of <italic>unc-86,</italic> a POU homeobox gene that affects many but not all NSM marker genes (<xref ref-type="bibr" rid="bib126">Zhang et al., 2014</xref>), strong synergistic differentiation defects of NSM are observed (<xref ref-type="fig" rid="fig10">Figure 10A</xref>). This genetic interaction mirrors the synergistic effects of <italic>unc-86</italic> and the LIM homeobox gene <italic>ttx-3</italic>, another regulator of NSM differentiation (<xref ref-type="bibr" rid="bib126">Zhang et al., 2014</xref>).</p><fig id="fig10" position="float"><label>Figure 10.</label><caption><title><italic>ceh-34</italic> cooperates with homeobox genes to specify distinct pharyngeal neuron types.</title><p>(<bold>A</bold>) <italic>unc-86</italic> and <italic>ceh-34</italic> synergistically affect NSM differentiation. Representative images and quantification are shown. Reporter gene used is <italic>cat-1</italic> (<italic>otIs224</italic>). Animals were scored at the L4 stage. Statistical analysis was performed using Fisher’s exact test. p-values were adjusted with the Holm-Sidak correction for multiple comparisons. N is indicated within each bar and represents number of neurons scored. (<bold>B</bold>) <italic>unc-86</italic> and <italic>ceh-34</italic> show synergistic defects in I1 neuron differentiation. Representative images and quantification are shown. Reporter gene used is <italic>unc-17</italic> (<italic>otIs661</italic>). Animals were scored at the L4 stage. Statistical analysis was performed using Fisher’s exact test. p-values were adjusted with the Holm-Sidak correction for multiple comparisons. N is indicated within each bar and represents number of neurons scored. (<bold>C</bold>) <italic>ceh-14</italic> and <italic>ceh-34</italic> show synergistic effects on I2 neuron differentiation. Representative images and quantification are shown for <italic>eat-4</italic> (<italic>otIs518</italic>). Bottom graph shows quantification for <italic>nlp-8</italic> (<italic>otIs711</italic>). Animals were scored at the L4 stage. Statistical analysis was performed using Fisher’s exact test or chi-square test. p-values were adjusted with the Holm-Sidak correction for multiple comparisons. N is indicated within each bar and represents number of neurons scored. (<bold>D</bold>) <italic>pros-1</italic> affects I3 neuron differentiation. Representative images and quantification are shown. Reporter gene is <italic>unc-17</italic> (<italic>otIs576</italic>). Animals were scored at the L1 stage. Statistical analysis was performed using Fisher’s exact test. N is indicated within each bar and represents number of neurons scored. (<bold>E</bold>) <italic>ceh-2</italic> affects I3 neuron differentiation. Representative images and quantification are shown. Reporter gene used is a CRISPR/Cas9-enginereed allele for <italic>ser-7 (syb4502</italic>). Animals were scored at the L4 stage. Statistical analysis was performed using Fisher’s exact test. N is indicated within each bar and represents number of neurons scored. (<bold>F</bold>) <italic>ceh-2</italic> and <italic>ceh-34</italic> show synergistic defects in I3 neuron differentiation. Representative images and quantification are shown. Reporter gene used is CRISPR/Cas9-engineered allele for <italic>unc-17</italic> (<italic>syb4491</italic>). Animals were scored at the L4 stage. Statistical analysis was performed using Fisher’s exact test. p-values were adjusted with the Holm-Sidak correction for multiple comparisons. N is indicated within each bar and represents number of neurons scored.</p></caption><graphic mime-subtype="tiff" mimetype="image" xlink:href="elife-76003-fig10-v2.tif"/></fig></sec><sec id="s2-11-2"><title>I1 neurons</title><p>A similar genetic interaction between <italic>ceh-34</italic> and <italic>unc-86</italic> is observed in the cholinergic I1 neuron pair, the only other pharyngeal neuron class that also co-expresses <italic>ceh-34</italic> and <italic>unc-86</italic> (<xref ref-type="bibr" rid="bib13">Baumeister et al., 1996</xref>; <xref ref-type="bibr" rid="bib108">Serrano-Saiz et al., 2018</xref>)<italic>,</italic> but which does not express <italic>ttx-3</italic>. While cholinergic identity, visualized via <italic>unc-17/VAChT</italic> expression, is not affected in <italic>unc-86(n846</italic>) single mutants<italic>,</italic> a combination of the <italic>ceh-34(n4796</italic>) hypomorphic allele with the <italic>unc-86(n846</italic>) mutation results in I1 losing its cholinergic identity (<xref ref-type="fig" rid="fig10">Figure 10B</xref>).</p></sec><sec id="s2-11-3"><title>I2 neurons</title><p>Synergistic interactions are also observed in the glutamatergic I2 neuron pair. Like the I1 neurons, no identity regulators were previously known for this neuron class. Our homeobox gene expression atlas (<xref ref-type="bibr" rid="bib100">Reilly et al., 2020</xref>) showed that the I2 neuron expresses the LIM homeobox gene <italic>ceh-14,</italic> the <italic>C. elegans</italic> ortholog of vertebrate Lhx3/4. No other pharyngeal neuron expresses <italic>ceh-14</italic>. While <italic>ceh-14</italic> single null mutants show no effect on <italic>eat-4/VGluT</italic> expression (the marker of glutamatergic identity), in combination with the <italic>ceh-34(n4796</italic>) hypomorphic allele, a strong synergistic effect on glutamatergic identity acquisition is observed in I2 (<xref ref-type="fig" rid="fig10">Figure 10C</xref>). Another molecular marker for I2 identity, the neuropeptide <italic>nlp-8</italic>, is also synergistically regulated by <italic>ceh-34</italic> and <italic>ceh-14</italic> (<xref ref-type="fig" rid="fig10">Figure 10C</xref>).</p></sec><sec id="s2-11-4"><title>I3 neuron</title><p>The previously unstudied cholinergic I3 neuron class expresses, in addition to <italic>ceh-34</italic>, the <italic>C. elegans</italic> ortholog of Empty spiracles/EMX, <italic>ceh-2</italic> (<xref ref-type="bibr" rid="bib6">Aspöck et al., 2003</xref>; <xref ref-type="bibr" rid="bib100">Reilly et al., 2020</xref>), as well as the Prospero ortholog <italic>pros-1</italic>, whose function in the nervous system has not previously been examined. We find that in <italic>pros-1</italic> null mutant animals, cholinergic identity of I3, measured with an <italic>unc-17/VAChT</italic> reporter transgene, is not properly acquired (<xref ref-type="fig" rid="fig10">Figure 10D</xref>). The <italic>ceh-2(ch4</italic>) null allele alone also shows a reduction of <italic>unc-17/VAChT</italic> expression (<xref ref-type="fig" rid="fig10">Figure 10F</xref>), as well as a reduction of the serotonin receptor <italic>ser-7</italic> expression (<xref ref-type="fig" rid="fig10">Figure 10E</xref>). In combination with the <italic>ceh-34(n4796</italic>) hypomorphic allele, <italic>unc-17/VAChT</italic> expression, and, hence, cholinergic identity of I3, is eliminated in <italic>ceh-2</italic> mutant animals (<xref ref-type="fig" rid="fig10">Figure 10F</xref>).</p></sec><sec id="s2-11-5"><title>M3 neuron</title><p>Apart from expression in I3, the EMX ortholog <italic>ceh-2</italic> is also expressed in the glutamatergic M3 neurons and is required for proper M3 function (<xref ref-type="bibr" rid="bib6">Aspöck et al., 2003</xref>), but molecular correlates for this functional defect have not previously been identified. We found that in <italic>ceh-2</italic> single mutants, expression of the <italic>eat-4/VGluT</italic> identity marker is affected in M3 (<xref ref-type="fig" rid="fig11">Figure 11A</xref>).</p><fig-group><fig id="fig11" position="float"><label>Figure 11.</label><caption><title>Other homeobox genes involved in specifying distinct pharyngeal neuron types.</title><p>(<bold>A</bold>) <italic>ceh-2</italic> affects M3 neuron differentiation. Representative images and quantification are shown. Reporter gene is <italic>eat-4</italic> (<italic>otIs388</italic>). Animals scored at the L4 stage. Statistical analysis was performed using chi-square test. N is indicated within each bar and represents number of neurons scored. (<bold>B</bold>) <italic>vab-15</italic> affects M5 neuron differentiation. Representative images and quantification are shown. Reporter genes used are <italic>ceh-34 (stIs10447</italic>) and CRISPR/Cas9-engineered alleles for <italic>unc-17</italic> (<italic>ot907</italic>) and <italic>trh-1</italic> (<italic>syb4421</italic>). Animals were scored at the L4 stage. Statistical analysis was performed using Fisher’s exact test. N is indicated within each bar and represents number of neurons scored. (<bold>C</bold>) <italic>ceh-45</italic> affects MI neuron differentiation. Representative images and quantification are shown. Reporter genes used are <italic>eat-4</italic> (<italic>otIs388</italic>) and CRISPR/Cas9-engineered allele for <italic>trh-1</italic> (<italic>syb4421</italic>). Animals were scored at the L4 stage. Statistical analysis was performed using Fisher’s exact test. N is indicated within each bar and represents number of neurons scored.</p></caption><graphic mime-subtype="tiff" mimetype="image" xlink:href="elife-76003-fig11-v2.tif"/></fig><fig id="fig11s1" position="float" specific-use="child-fig"><label>Figure 11—figure supplement 1.</label><caption><title>Homeobox mutant alleles.</title><p>(<bold>A</bold>) Homeobox mutant alleles generated in this study. Numbers indicating beginning and end of deletion are relative to the start codon of the gene of interest. See Materials and methods for detail. (<bold>B</bold>) <italic>ceh-79</italic>, <italic>ceh-7</italic>, and <italic>ceh-53</italic> do not show defects in pharyngeal neuron differentiation or synergistic effects with ceh-34. Reporter used are <italic>otIs388</italic> and <italic>otIs518</italic> to monitor <italic>eat-4</italic> expression and a CRISPR/Cas9-engineered <italic>gfp</italic> allele for <italic>unc-17</italic> (<italic>syb4491</italic>). Animals were scored at the L4 stage. Statistical analysis was performed using Fisher’s exact test or chi-square test. p-values were adjusted with the Holm-Sidak correction for multiple comparisons. N is indicated within each bar and represents number of neurons scored.</p></caption><graphic mime-subtype="tiff" mimetype="image" xlink:href="elife-76003-fig11-figsupp1-v2.tif"/></fig><fig id="fig11s2" position="float" specific-use="child-fig"><label>Figure 11—figure supplement 2.</label><caption><title>Homeobox misexpression experiments.</title><p>We misexpressed genomic copies of the <italic>unc-86</italic> and <italic>ttx-3</italic> locus, driven by the pan-pharyngeal neuron promoter <italic>ehs-1</italic> in several independent transgenic lines to generate the normally NSM-specific CEH-34/UNC-86/TTX-3 combination in all pharyngeal neurons to then ask whether the NSM marker <italic>tph-1</italic> becomes expressed in other pharyngeal neurons. Ectopic expression of <italic>tph-1</italic> was indeed observed, albeit at limited penetrance and in only some select neuron classes.</p></caption><graphic mime-subtype="tiff" mimetype="image" xlink:href="elife-76003-fig11-figsupp2-v2.tif"/></fig></fig-group></sec><sec id="s2-11-6"><title>M4 neuron</title><p>In the cholinergic M4 neuron, the <italic>ceh-28</italic> and <italic>zag-1</italic> homeobox genes have previously been shown to each regulate subsets of M4 identity features (<xref ref-type="bibr" rid="bib96">Ramakrishnan and Okkema, 2014</xref>). Both <italic>zag-1</italic> and <italic>ceh-28</italic> affected <italic>flp-2</italic> expression, but only <italic>zag-1</italic>, and not <italic>ceh-28,</italic> was found to affect <italic>ser-7</italic> expression (<xref ref-type="bibr" rid="bib96">Ramakrishnan and Okkema, 2014</xref>). In contrast, <italic>ceh-28</italic> but not <italic>zag-</italic>1 affected <italic>flp-5</italic> expression and neither <italic>zag-1</italic> nor <italic>ceh-28</italic> affected <italic>unc-17</italic> or <italic>flp-21</italic> expression (<xref ref-type="bibr" rid="bib96">Ramakrishnan and Okkema, 2014</xref>). <italic>ceh-34</italic> null mutants show effects on the expression of all the tested <italic>ceh-28</italic> or <italic>zag-1</italic>-dependent (<italic>ser-7, flp-2,</italic> and <italic>flp-5</italic>) or -independent markers (<italic>unc-17, flp-21</italic>; <xref ref-type="fig" rid="fig3">Figures 3</xref>—<xref ref-type="fig" rid="fig5">5</xref>), indicating that <italic>ceh-34</italic> may collaborate with these homeobox genes to control distinct subsets of M4 differentiation markers. <italic>ceh-34</italic> also affects <italic>ceh-28</italic> expression (<xref ref-type="fig" rid="fig6s2">Figure 6—figure supplement 2</xref>).</p></sec><sec id="s2-11-7"><title>M5 neuron</title><p>The cholinergic M5 neuron expresses, in addition to <italic>ceh-34</italic>, the Msh/Msx ortholog <italic>vab-15</italic> (<xref ref-type="bibr" rid="bib100">Reilly et al., 2020</xref>). Since only a hypomorphic allele of <italic>vab-15</italic> was previously available (<xref ref-type="bibr" rid="bib35">Du and Chalfie, 2001</xref>), we generated a molecular null allele, <italic>ot1136</italic>, through CRISPR/Cas9 genome engineering (<xref ref-type="fig" rid="fig11s1">Figure 11—figure supplement 1A</xref>). In contrast to the hypomorphic allele, these null mutant animals are very slow growing, but still homozygous viable. We found a complete loss of expression of the cholinergic marker <italic>unc-17/VAChT</italic>, as well as the neuropeptidergic marker, <italic>trh-1,</italic> in <italic>vab-15(ot1136</italic>) animals (<xref ref-type="fig" rid="fig11">Figure 11B</xref>). Complete loss of marker expression is not an indicator of failure of this neuron to be generated, since crossing a <italic>ceh-34</italic> marker into <italic>vab-15</italic> null mutants revealed the presence and normal <italic>ceh-34</italic> expression of M5 (<xref ref-type="fig" rid="fig11">Figure 11B</xref>).</p></sec><sec id="s2-11-8"><title>MI neuron</title><p>In our previous genome-wide analysis of homeobox gene expression (<xref ref-type="bibr" rid="bib100">Reilly et al., 2020</xref>), we had shown that the glutamatergic MI neuron expresses the sole worm ortholog of the Goosecoid homeobox gene, <italic>ceh-45</italic>. Embryonically, <italic>ceh-45</italic> is expressed in multiple pharyngeal tissues (<xref ref-type="bibr" rid="bib76">Ma et al., 2021</xref>), but its expression resolves to exclusive expression in the MI and I1 neurons (<xref ref-type="bibr" rid="bib100">Reilly et al., 2020</xref>). <italic>ceh-45</italic> had not previously been functionally characterized. We examined <italic>ceh-45</italic> function by generating a null allele using CRISPR/Cas9 genome engineering, <italic>ot1065</italic> (<xref ref-type="fig" rid="fig11s1">Figure 11—figure supplement 1A</xref>). <italic>ceh-45</italic> null mutant animals display partially penetrant embryonic lethality, with escapers being slow growing. Mirroring the <italic>ceh-34</italic> defects, we found that glutamatergic identity specification of MI (as assessed by <italic>eat-4/VGluT</italic> expression) is strongly affected in surviving <italic>ceh-45</italic> null mutant animals (<xref ref-type="fig" rid="fig11">Figure 11C</xref>). Similarly, expression of the neuropeptide <italic>trh-1</italic> is also affected in MI (<xref ref-type="fig" rid="fig11">Figure 11C</xref>).</p><p>In our search for potential <italic>ceh-34</italic> cofactors, we also considered three divergent, non-conserved homeobox genes, <italic>ceh-7, ceh-53,</italic> and <italic>ceh-79</italic> that display expression in subsets of pharyngeal neurons (<xref ref-type="bibr" rid="bib100">Reilly et al., 2020</xref>). We generated null alleles for these three genes using CRISPR/Cas9 genome engineering (<xref ref-type="fig" rid="fig11s1">Figure 11—figure supplement 1A</xref>). However, we observed no <italic>eat-4/VGluT</italic> or <italic>unc-17/VAChT</italic> expression defects in either of these mutant strains, either alone or in combination with the <italic>ceh-34</italic> hypomorphic allele <italic>n4796</italic> (<xref ref-type="fig" rid="fig11s1">Figure 11—figure supplement 1B</xref>).</p><p>In conclusion, nine phylogenetically conserved homeobox genes appear to collaborate with <italic>ceh-34</italic> in 8 of the 14 pharyngeal neuron classes to specify their proper identity (summarized in <xref ref-type="fig" rid="fig12">Figure 12</xref>). Since the remaining six classes also express specific combinations of homeobox genes (<xref ref-type="bibr" rid="bib100">Reilly et al., 2020</xref>), we anticipate that future analysis will likely reveal homeobox codes throughout the entire pharyngeal nervous system.</p><fig id="fig12" position="float"><label>Figure 12.</label><caption><title>Summary of homeobox gene codes involved in pharyngeal neuron identity specification.</title><p>Shown here are homeobox genes for which an involvement in pharyngeal neuron differentiation has been shown, as well as the 8 (of a total of 14) pharyngeal neuron classes for which a homeobox regulator <italic>besides ceh-34</italic> has been identified to date. Each neuron expresses additional homeobox genes (resulting in neuron type-specific combination of homeobox genes; <xref ref-type="bibr" rid="bib100">Reilly et al., 2020</xref>), but the function of these additional genes remains to be characterized.</p></caption><graphic mime-subtype="tiff" mimetype="image" xlink:href="elife-76003-fig12-v2.tif"/></fig></sec></sec></sec><sec id="s3" sec-type="discussion"><title>Discussion</title><p>We have identified here common, overarching themes in the differentiation of the pharyngeal nervous system, the enteric nervous system of the nematode <italic>C. elegans</italic>. A number of previous studies have identified transcription factors involved in regulating specific differentiation aspects of a small subset of pharyngeal neurons (<xref ref-type="bibr" rid="bib6">Aspöck et al., 2003</xref>; <xref ref-type="bibr" rid="bib36">Feng and Hope, 2013</xref>; <xref ref-type="bibr" rid="bib82">Mörck et al., 2004</xref>; <xref ref-type="bibr" rid="bib96">Ramakrishnan and Okkema, 2014</xref>; <xref ref-type="bibr" rid="bib98">Rauthan et al., 2007</xref>; <xref ref-type="bibr" rid="bib99">Ray et al., 2008</xref>; <xref ref-type="bibr" rid="bib126">Zhang et al., 2014</xref>), yet no common theme emerged from these studies. We have shown here that a Sine oculis ortholog, <italic>ceh-34,</italic> orchestrates the terminal differentiation program of all pharyngeal neurons. CEH-34 appears to act as a terminal selector of pharyngeal neuron identity, as inferred from its requirement to initiate terminal neuronal differentiation programs in all pharyngeal neurons (without affecting pan-neuronal identity, a unifying trait of all terminal selectors), as well as its continuous role in maintaining the differentiated state (another defining trait of terminal selectors). The aspects of the differentiation program that we consider here, and found to be under control of <italic>ceh-34,</italic> include anatomical (axon outgrowth and synapse formation), molecular, and functional features. Molecular and functional features affected by <italic>ceh-34</italic> range from neuron-neuron communication to presumptive sensory functions to the intriguing function of enteric neurons as potential regulators of microbial colonization. There is good reason to believe that CEH-34 controls these diverse phenotypic identity features in a direct manner, that is, it may not act through intermediary factors. CEH-34 is among the many <italic>C. elegans</italic> transcription factors whose binding sites have been determined in vitro through protein binding microarrays (<xref ref-type="bibr" rid="bib86">Narasimhan et al., 2015</xref>) and a phylogenetic footprinting pipeline reveals that these motifs are significantly enriched in the single cell transcriptome of most pharyngeal neuron classes (<xref ref-type="bibr" rid="bib46">Glenwinkel et al., 2021</xref>). This is in accordance with CEH-34 being a shared terminal selector component of all pharyngeal neuron classes.</p><p>Within the nervous system, the selectivity of <italic>ceh-34</italic> expression in all pharyngeal neurons is remarkable – based on extensive gene expression pattern analysis, including recent scRNA data, there is no other transcription factor that so selectively and comprehensively defines all pharyngeal, but no non-pharyngeal neuronal cell types. We found that the key determinant of this expression is the organ selector PHA-4 (<xref ref-type="bibr" rid="bib42">Gaudet and Mango, 2002</xref>; <xref ref-type="bibr" rid="bib60">Horner et al., 1998</xref>; <xref ref-type="bibr" rid="bib66">Kalb et al., 1998</xref>; <xref ref-type="bibr" rid="bib78">Mango et al., 1994</xref>), which is expressed earlier in development to act both as a pioneer factor (<xref ref-type="bibr" rid="bib62">Hsu et al., 2015</xref>) and to induce the expression of a number of different terminal selectors for different tissue types within the foregut – the <italic>ceh-34</italic> gene for all neurons (this paper), the bHLH transcription factor <italic>hlh-6</italic> for pharyngeal gland cells (<xref ref-type="bibr" rid="bib109">Smit et al., 2008</xref>) and the Nk-type homeobox gene <italic>ceh-22</italic> for pharyngeal muscle identity (<xref ref-type="bibr" rid="bib121">Vilimas et al., 2004</xref>). Given the continuous expression of PHA-4 throughout postembryonic life, it is conceivable that PHA-4 acts in a regulatory feedforward motif configuration, where it not only induces tissue-type terminal selectors (<italic>ceh-34, hlh-6, ceh-22</italic>), but then also collaborates with them to induce and maintain terminal differentiation batteries.</p><p>Our work indicates that CEH-34 is a shared component of neuron type-specific terminal selector complexes, such that CEH-34 interacts with a distinct set of at least eight homeodomain cofactors to impose unique features in distinct pharyngeal neuron types. As is the case for CEH-34 target sites, the in vitro-determined binding sites for several of these homeodomain cofactors display a phylogenetically conserved enrichment in the respective neuron type-specific gene batteries (<xref ref-type="bibr" rid="bib46">Glenwinkel et al., 2021</xref>). For example, CEH-34 and UNC-86 binding sites are co-enriched in the I1 neuronal transcriptome, CEH-34 and CEH-14 binding sites in the I2 neuronal transcriptome, CEH-34 and CEH-2 in the I3 transcriptome, CEH-34 and CEH-45 in the MI transcriptome, and VAB-15 and CEH-34 in the M5 transcriptome (<xref ref-type="bibr" rid="bib46">Glenwinkel et al., 2021</xref>). The interactions of CEH-34 with its various collaborating factors is likely highly dependent on the <italic>cis</italic>-regulatory architecture of individual target genes. We infer this from <italic>ceh-34</italic> mutant phenotypes, which, depending on target gene, can be fully or partially penetrant (i.e. not all animals affected), or fully or partially expressive (i.e. ‘dimming’ of target gene expression), or a combination of both. Depending on the number, affinity, and arrangement of binding sites for individual factors, CEH-34 and its individual cofactors may each have a more or less pronounced role in the regulation of individual target genes.</p><p>We found that the ectopic expression of pharyngeal homeobox genes reveal a limited capacity to respecify identity features of pharyngeal neuron (<xref ref-type="fig" rid="fig11s2">Figure 11—figure supplement 2</xref>). This is a likely reflection of our incomplete knowledge of the entire set of collaborating factors and possibly also a reflection of the difficulties associated with overriding endogenous terminal differentiation programs by ectopic expression of drivers of alternative fates (<xref ref-type="bibr" rid="bib90">Patel and Hobert, 2017</xref>).</p><p>Taken together, our findings not only reveal a common terminal selector-based regulatory logic for how a self-contained, enteric nervous system acquires its terminal differentiated state. They also corroborate two themes that have emerged from recent studies, primarily in <italic>C. elegans</italic> (and also emerging in other systems):</p><list list-type="order"><list-item><p>Homeobox genes – and more specifically, combinatorial codes of homeobox genes – are prominently employed in neuron identity specification throughout all neurons of the nervous system, as exemplified here in the context of the enteric nervous system, the so-called ‘second brain’ of animals (<xref ref-type="bibr" rid="bib43">Gershon, 1998</xref>).</p></list-item><list-item><p>A number of identity-specifying terminal selectors, such as CEH-34, are expressed in synaptically connected neurons, suggesting they may specify the assembly of neurons into functional circuitry. It is presently unclear how prominent such a connectivity theme is. We observed a few cases of such putative ‘circuit organizer’ transcription factors in the non-pharyngeal nervous system (<xref ref-type="bibr" rid="bib14">Berghoff et al., 2021</xref>; <xref ref-type="bibr" rid="bib93">Pereira et al., 2015</xref>) and there are some striking potential examples in vertebrates (<xref ref-type="bibr" rid="bib19">Brunet and Pattyn, 2002</xref>; <xref ref-type="bibr" rid="bib27">Dauger et al., 2003</xref>; <xref ref-type="bibr" rid="bib47">Ha and Dougherty, 2018</xref>; <xref ref-type="bibr" rid="bib101">Ruiz-Reig et al., 2019</xref>; <xref ref-type="bibr" rid="bib110">Sokolowski et al., 2015</xref>). This present study provides an extreme example of this. An entire set of synaptically connected neurons (the worm’s enteric nervous system) is specified by a single transcription factor (CEH-34), which apparently helps these neurons to become assembled into functional circuitry. In each pharyngeal neuron type, CEH-34 pairs up with different homeodomain proteins to diversify pharyngeal neurons into distinct identities. Following Dobzhansky’s dictum that ‘nothing in biology makes sense except in the light of evolution’ (<xref ref-type="bibr" rid="bib31">Dobzhansky, 1964</xref>), we speculate that the pharyngeal nervous system may have derived from a homogenous set of interconnected, identical neurons, all specified by <italic>ceh-34</italic>, which may have regulated a homophilic adhesion molecule that functionally linked these ancestral neurons. The more complex, present-day circuitry may have evolved through the eventual partnering of CEH-34 protein with distinct sets of homeodomain proteins that diversified neuronal identities, connectivity, and function in the pharyngeal nervous system.</p></list-item></list><p>Arguing for a conserved function of Six homeodomain factors in enteric nervous system differentiation is the observation that in flies, the Sine oculis paralog Optix is indeed expressed in the frontal ganglion (<xref ref-type="bibr" rid="bib106">Seo et al., 1999</xref>), which constitutes the nervous system of insect foreguts (<xref ref-type="bibr" rid="bib52">Hartenstein, 1997</xref>). In the context of studying Sine oculis function in the <italic>Drosophila</italic> corpus cardiacum, it was also noted that the entire stomatogastric ganglion, that is, the entire enteric nervous system (of which the frontal ganglion is a part) does not form in Sine oculis mutants (<xref ref-type="bibr" rid="bib28">De Velasco et al., 2004</xref>). In sea urchin, pharyngeal neurons also express, and require for their proper development, the Sine oculis paralog Six3 (<xref ref-type="bibr" rid="bib123">Wei et al., 2011</xref>). Other than an early report of Six2 expression in the mouse foregut region (<xref ref-type="bibr" rid="bib87">Ohto et al., 1998</xref>), the expression and function of Sine oculis orthologs in vertebrate enteric nervous systems has, to our knowledge, not yet been examined.</p><p>Notably, another homeobox gene appears to have a critical and very broad function in vertebrate enteric nervous system development that is akin to the broadness of <italic>ceh-34</italic> function in <italic>C. elegans</italic>. The paired-type homeobox gene Phox2b is expressed in enteric nervous system precursors and required early in development for the generation of all enteric ganglia (<xref ref-type="bibr" rid="bib92">Pattyn et al., 1999</xref>; <xref ref-type="bibr" rid="bib116">Tiveron et al., 1996</xref>). While Phox2b is also continuously expressed throughout the adult enteric nervous system (<xref ref-type="bibr" rid="bib25">Corpening et al., 2008</xref>; <xref ref-type="bibr" rid="bib34">Drokhlyansky et al., 2020</xref>; <xref ref-type="bibr" rid="bib81">Morarach et al., 2021</xref>), its function in terminal differentiation and perhaps even maintenance of enteric neurons identity remains to be examined, for example, via temporally controlled, postdevelopmental knock-out in juvenile or adult stage animals. If the analogy to <italic>ceh-34</italic> holds, the enteric neurons of such animals may lose their differentiated state. Remarkably, additional homeobox genes have recently been noted to show highly selective expression patterns within the vertebrate enteric nervous system, effectively discriminating distinct neuronal subtypes (<xref ref-type="bibr" rid="bib80">Memic et al., 2018</xref>). One of them, the Meis ortholog Pbx3, has been confirmed to play an important role in the postmitotic specification of distinct enteric neuron types (<xref ref-type="bibr" rid="bib81">Morarach et al., 2021</xref>). Hence, it appears that the overall logic of a pan-enteric homeobox gene, cooperating with cell type-specific homeobox genes, may be conserved from worms to vertebrates.</p><p>Another evolutionary perspective of our findings considers the origins of the enteric nervous system, and maybe nervous systems as a whole. Based on a number of anatomical and functional features, it has been proposed that enteric nervous systems preceded, and then paralleled the emergence of centralized nervous systems of bilaterian animals (<xref ref-type="bibr" rid="bib39">Furness and Stebbing, 2018</xref>; <xref ref-type="bibr" rid="bib45">Gilbert, 2019</xref>; <xref ref-type="bibr" rid="bib70">Klimovich and Bosch, 2018</xref>). This argument is bolstered by considering a number of features of the enteric, that is, pharyngeal nervous system of <italic>C. elegans</italic>: (1) its polymodality (sensory + inter + motor neuron) of most pharyngeal neurons, (2) its innervation of what is essentially a single sheath of myoepithelial cells, a proposed feature of primitive nervous systems (<xref ref-type="bibr" rid="bib77">Mackie, 1970</xref>), (3) its simple immune functions (also thought to be a feature of primitive neurons, e.g. in hydra; <xref ref-type="bibr" rid="bib71">Klimovich et al., 2020</xref>; <xref ref-type="bibr" rid="bib70">Klimovich and Bosch, 2018</xref>), and (4) the relatively indiscriminate synaptic cross-innervation patterns among pharyngeal neurons (<xref ref-type="bibr" rid="bib23">Cook et al., 2020</xref>). If pharyngeal neurons indeed resemble a more primitive, ancestral state of neurons, our observation that CEH-34 acts as a terminal selector in these neurons would point to the ancient nature of (1) a terminal selector-type logic of neuronal identity specification and (2) the deployment of a homeobox gene in such function. Sine oculis homologs appear to be employed broadly in sensory neuron specification across animal phylogeny, even in the most basal metazoan (<xref ref-type="bibr" rid="bib65">Jacobs et al., 2007</xref>). CEH-34/Sine oculis may represent an ancestral determinant of neuronal cell types.</p></sec><sec id="s4" sec-type="materials|methods"><title>Materials and methods</title><sec id="s4-1"><title><italic>C. elegans</italic> strains</title><p>Worms were grown at 20°C on nematode growth media (NGM) plates seeded with <italic>E. coli</italic> (OP50) bacteria as a food source. The wild-type strain used is Bristol N2. A complete list of strains used in this study can be found in <xref ref-type="supplementary-material" rid="supp1">Supplementary file 1</xref>.</p><sec id="s4-1-1"><title>Generation of deletion alleles</title><p>Mutant alleles for the <italic>ceh-34, ceh-45, vab-15, ceh-7, ceh-53, ceh-79, and eya-1</italic> genes (schematized in <xref ref-type="fig" rid="fig2">Figure 2</xref> and <xref ref-type="fig" rid="fig11s1">Figure 11—figure supplement 1</xref>) were generated by CRISPR/Cas9 genome engineering as described (<xref ref-type="bibr" rid="bib32">Dokshin et al., 2018</xref>). A deletion of the full locus was generated using two crRNAs and an ssODN donor. Sequences are as follows:</p><list list-type="simple"><list-item><p><italic>ceh-34(ot1014)</italic>: crRNAs (<named-content content-type="sequence">cgacaagaggacgacgctct </named-content>and <named-content content-type="sequence">ttattctaatggtcttgagg</named-content>), ssODN (<named-content content-type="sequence">gcgacattcactgggggacgacaagaggacgacgccaagaccattagaataacttttaactatatttttg</named-content>).</p></list-item><list-item><p><italic>ceh-34(ot1188</italic>) and <italic>ceh-34(ot1189</italic>) were generated the same way as <italic>ceh-34(ot1014</italic>) and are molecularly identical. The difference is that <italic>ot1188</italic> was generated in the background of <italic>flr-2(syb4861</italic>) and <italic>ot1189</italic> was generated in the background of <italic>htrl-1(syb4895</italic>) because these loci are very closely linked to <italic>ceh-34</italic>.</p></list-item><list-item><p><italic>ceh-45(ot1065)</italic>: crRNAs (<named-content content-type="sequence">taggccaccgatacaagcag </named-content>and <named-content content-type="sequence">tccgccagagaccggtcggg</named-content>), ssODN (<named-content content-type="sequence">aactgaaattcgaaattctaggccaccgatacaaggaccggtctctggcggattactgtagccgtttggg</named-content>).</p></list-item><list-item><p><italic>vab-15(ot1136)</italic>: crRNAs (<named-content content-type="sequence">ggtcaacacatctgcttata </named-content>and <named-content content-type="sequence">ttgtgaaaagcgtaatactt</named-content>), ssODN (<named-content content-type="sequence">agcgcgtggtgttatattggtcaacacatctgctttattacgcttttcacaatattttatggactaacca</named-content>).</p></list-item><list-item><p><italic>ceh-7(ot1138)</italic>: crRNAs (<named-content content-type="sequence">ccccttgtactgacaattga </named-content>and <named-content content-type="sequence">tgatcaggaatttgctctcg</named-content>), ssODN (<named-content content-type="sequence">cgaaacgaaaacgggcggccccttgtactgacaatgagcaaattcctgatcatctgacacttttccagac</named-content>).</p></list-item><list-item><p><italic>ceh-53(ot1066)</italic>: crRNAs (<named-content content-type="sequence">gcggcgcttccgggactctg </named-content>and <named-content content-type="sequence">gaaatcaggggcaaacttgg</named-content>), ssODN (<named-content content-type="sequence">gctccatcagaaaaaggggcggcgcttccgggactagtttgcccctgatttcgaatatttatgtgaaaaa</named-content>).</p></list-item><list-item><p><italic>ceh-79(ot1067)</italic>: crRNAs (<named-content content-type="sequence">aagaagaaccgacgaaccca </named-content>and <named-content content-type="sequence">cacccccgaactgtgttcac</named-content>), ssODN (<named-content content-type="sequence">aactcctgtctctccttcgatgatcttttccatggcactggacacatatctttaacttttccgatgtgta</named-content>).</p></list-item><list-item><p><italic>eya-1(ot1197):</italic> crRNAs (<named-content content-type="sequence">ttttgtacgagtgactcagt </named-content>and <named-content content-type="sequence">acacctgtatctctgcgggg</named-content>), ssODN (<named-content content-type="sequence">cggtcgtcagattggtagccctccaaaatcccactcgcagagatacaggtgttcaaaatcggggtgaaga</named-content>).</p></list-item></list><p>With the exception of <italic>ceh-34(ot1014</italic>), <italic>ceh-34(ot1188)</italic> and <italic>ceh-34(ot1189)</italic> animals, all other null mutant alleles are homozygous viable. <italic>ceh-45(ot1065</italic>) and <italic>vab-15(ot1136</italic>) are slow growing and at least <italic>ceh-45(ot1065</italic>) animals also display a partially penetrant embryonic lethality.</p></sec><sec id="s4-1-2"><title>Generation of reporter knock-ins</title><p>The <italic>ceh-34</italic> locus was tagged with <italic>mNG::3xFLAG::AID</italic> to generate <italic>ceh-34(ot903</italic>). The AID sequence was amplified and inserted into the pDD268 vector (<italic>mNG::SEC::3xFLAG</italic>) (<xref ref-type="bibr" rid="bib29">Dickinson et al., 2015</xref>) to generate the plasmid pUA77 (<italic>ccdB::mNG::SEC::3xFLAG::AID ccdB</italic>; <xref ref-type="bibr" rid="bib2">Aghayeva et al., 2021</xref>). The construct contains a self-excising drug selection cassette (SEC) and was used for SEC-mediated CRISPR insertion of <italic>mNG::3xFLAG::AID</italic> right before the stop codon of <italic>ceh-34</italic> as described in <xref ref-type="bibr" rid="bib29">Dickinson et al., 2015</xref>. The guide RNA used targets the following sequence: <named-content content-type="sequence">ttattctaatggtcttgagg</named-content>.</p><p>The <italic>pha-4</italic> locus was tagged with <italic>gfp</italic> at its 3’end to generate <italic>pha-4(ot946</italic>), using Cas9 protein, tracrRNA, and crRNA from IDT, as previously described (<xref ref-type="bibr" rid="bib32">Dokshin et al., 2018</xref>). One crRNA (<named-content content-type="sequence">attggagatttataggttgg</named-content>) and an asymmetric double-stranded <italic>gfp-loxP-3xFLAG</italic> cassette, amplified from a plasmid, were used to insert the fluorescent tag at the C-terminal.</p><p>Reporter alleles for <italic>flp-5(syb4513), flp-28(syb3207), flr-2(syb4861), htrl-1(syb4895), ser-7(syb4502), rig-3(syb4763), rig-6(syb4729), trh-1(syb4421), and trhr-1(syb4453</italic>) were generated by CRISPR/Cas9 to insert an <italic>SL2::GFP::H2B</italic> cassette at the C-terminus of the respective gene. For the <italic>unc-17(syb4491</italic>) allele <italic>T2A::GFP::H2B</italic> was inserted at the C-terminus. For the <italic>kin-36(syb4677</italic>) locus, a <italic>GFP::HIS::SL2</italic> sequence was inserted at the N-terminus. These strains were generated by Sunybiotech and are listed in <xref ref-type="supplementary-material" rid="supp1">Supplementary file 1</xref>.</p></sec><sec id="s4-1-3"><title>Generation of transgenic reporter strains</title><p>To generate <italic>otIs762(ceh-34prom::TagRFP</italic>) a 3720 bp PCR fragment containing the whole <italic>ceh-34</italic> intergenic region plus the first 2 exons and 2 introns was amplified from N2 genomic DNA and cloned into a TagRFP vector using Gibson Assembly (NEBuilder HiFi DNA Assembly Master Mix, Catalog # E2621L). The following primers were used: <named-content content-type="sequence">aatgaaataagcttgcatgcctgcaTGTTTATTTTCTATGTAATTTCTAATAAAGTCCC </named-content>and <named-content content-type="sequence">cccggggatcctctagagtcgacctgcaCTGAAAGTTGAAATATAGAATTTTTAATTTTTTTTTTTTG</named-content>. The resulting construct was injected as a simple extrachromosomal array (50 ng/µl) into <italic>pha-1(e2123</italic>) animals, using a <italic>pha-1</italic> rescuing plasmid (pBX, 50 ng/µl) as co-injection marker. A representative line was integrated into the genome with gamma irradiation and backcrossed four times.</p><p>To generate <italic>otIs785(ceh-34prom::GFP::CLA-1</italic>), a 3720 bp PCR fragment containing the whole <italic>ceh-34</italic> intergenic region plus the first 2 exons and 2 introns was amplified from N2 genomic DNA and cloned into PK065 (kindly shared by Peri Kurshan) using Gibson Assembly (NEBuilder HiFi DNA Assembly Master Mix, Catalog # E2621L). The following primers were used: <named-content content-type="sequence">gattacgccaagcttgcatgcTGTTTATTTTCTATGTAATTTCTAATAAAGTC </named-content>and <named-content content-type="sequence">gttcttctcctttactcatcccgggCTGAAAGTTGAAATATAGAATTTTTAATTTTTTTTTTTTG</named-content>. The resulting construct was injected at 7 ng/µl together with <italic>ceh-34prom::TagRFP</italic> (50 ng/µl) (see above) and <italic>rol-6(su1006</italic>) as a co-injection marker. A representative line was integrated into the genome with gamma irradiation and backcrossed four times.</p></sec></sec><sec id="s4-2"><title>Choice of pharyngeal fate markers</title><p>Most fate markers used in this paper were previously described. For several of those, we used previous expression patterns (based on transgenic reporter fusions) as an impetus to then generate reporter alleles by CRISPR/Cas9 genome engineering (e.g. <italic>flp-5</italic>, <italic>ser-7</italic>; all listed in previous sections). One case warrants specific emphasis: scRNA has shown that the T11F9.12 gene is expressed exclusively in most, if not all pharyngeal neurons, a notion we confirmed with a CRISPR/Cas9 genome-engineered reporter allele. T11F9.12 encodes for a relatively large (736aa), secreted and nematode-specific protein that contains a Pfam-annoted domain (Htrl domain; PF09612) that is, outside nematodes, only found in a bacterial protein HtrL. This bacterial protein currently has no assigned function but is found in a region of LPS core biosynthesis genes which are involved in bacterial immune defense (<xref ref-type="bibr" rid="bib15">Bertani and Ruiz, 2018</xref>). Interestingly, hidden Markov model-based searches in the Panther database reveal a sequence pattern (PTHR21579) along the entire T11F9.12 protein that is otherwise only found in <italic>C. elegans</italic> saposin proteins, which are bona fide immune effector proteins (<xref ref-type="bibr" rid="bib12">Bányai and Patthy, 1998</xref>; <xref ref-type="bibr" rid="bib59">Hoeckendorf et al., 2012</xref>; <xref ref-type="bibr" rid="bib89">Oishi et al., 2009</xref>). We named this protein HTRL-1.</p></sec><sec id="s4-3"><title>Temporally controlled CEH-34 protein degradation</title><p>We used conditional protein depletion with a modified auxin-inducible degradation system (<italic>C.e</italic>.AIDv2; <xref ref-type="bibr" rid="bib53">Hills-Muckey et al., 2022</xref>). AID-tagged proteins are conditionally degraded when exposed to 5-Ph-IAA in the presence of <sub>At</sub>TIR1<sup>F79G</sup>. To generate the experimental strain, the conditional allele <italic>ceh-34(ot903[ceh-34::mNG::AID]</italic>) was crossed with <italic>cshIs140[rps-28p::TIR1(F79G)]</italic>, which expresses <sub>At</sub>TIR1<sup>F79G</sup> ubiquitously. The synthetic auxin analog 5-Ph-IAA was purchased from BioAcademia (#30-003-10) and dissolved in ethanol (EtOH) to prepare 100 mM stock solutions. NGM agar plates with fully grown OP50 bacterial lawn were coated with the 5-Ph-IAA stock solution to a final concentration of 200 μM and allowed to dry overnight at room temperature. To induce protein degradation, synchronized L1 or young adult worms were transferred onto 5-Ph-IAA -coated plates and kept at 20°C. As a control, worms were transferred onto EtOH-coated plates instead. 5-Ph-IAA solutions and experimental plates were shielded from light.</p></sec><sec id="s4-4"><title>Microscopy and image analysis</title><p>Worms were anesthetized using 100 mM sodium azide (NaN<sub>3</sub>) and mounted on 5% agarose pads on glass slides. Z-stack images (each ~0.7 µm thick) were acquired using a Zeiss confocal microscope (LSM880) or Zeiss compound microscope (Imager Z2) with the ZEN software. Maximum intensity projections of 2–30 slices were generated with the ImageJ software (<xref ref-type="bibr" rid="bib104">Schindelin et al., 2012</xref>).</p><p>Reporter gene expression in different neurons was visualized in wild-type and mutant animals and usually assigned to one of the following categories: ‘on’ (fluorescence levels comparable to wild-type animals), ‘dim’ (fluorescence still detectable but much dimmer than wild-type animals), or ‘off’ (fluorescence not detectable). In cases were fluorescence levels were variable between animals and difference with wild type was not obvious mean fluorescence intensity in each neuron was measured with the ImageJ software.</p></sec></sec></body><back><sec id="s5" sec-type="additional-information"><title>Additional information</title><fn-group content-type="competing-interest"><title>Competing interests</title><fn fn-type="COI-statement" id="conf1"><p>No competing interests declared</p></fn><fn fn-type="COI-statement" id="conf2"><p>No competing interests declared</p></fn></fn-group><fn-group content-type="author-contribution"><title>Author contributions</title><fn fn-type="con" id="con1"><p>Conceptualization, Data curation, Formal analysis, Investigation, Methodology, Visualization, Writing - review and editing</p></fn><fn fn-type="con" id="con2"><p>Formal analysis, Investigation</p></fn><fn fn-type="con" id="con3"><p>Conceptualization, Data curation, Formal analysis, Investigation, Visualization, Writing - review and editing</p></fn><fn fn-type="con" id="con4"><p>Formal analysis, Investigation, Visualization</p></fn><fn fn-type="con" id="con5"><p>Formal analysis, Investigation, Visualization</p></fn><fn fn-type="con" id="con6"><p>Formal analysis, Investigation, Visualization</p></fn><fn fn-type="con" id="con7"><p>Conceptualization, Funding acquisition, Project administration, Supervision, Writing - original draft</p></fn></fn-group></sec><sec id="s6" sec-type="supplementary-material"><title>Additional files</title><supplementary-material id="supp1"><label>Supplementary file 1.</label><caption><title>Strain list.</title><p>This file provides a list of all <italic>Caenorhabditis elegans</italic> strains used in this study.</p></caption><media mime-subtype="docx" mimetype="application" xlink:href="elife-76003-supp1-v2.docx"/></supplementary-material><supplementary-material id="transrepform"><label>Transparent reporting form</label><media mime-subtype="docx" mimetype="application" xlink:href="elife-76003-transrepform1-v2.docx"/></supplementary-material><supplementary-material id="sdata1"><label>Source data 1.</label><caption><title>This file provides all the primary animal scoring data.</title></caption><media mime-subtype="xlsx" mimetype="application" xlink:href="elife-76003-data1-v2.xlsx"/></supplementary-material></sec><sec id="s7" sec-type="data-availability"><title>Data availability</title><p>All data generated or analysed during this study are included in the manuscript and supporting files.</p></sec><ack id="ack"><title>Acknowledgements</title><p>We thank Chi Chen for generating transgenic lines, Seth Taylor and Michael Gershon for discussion, Kelly Liu, Robert Horvitz, Peri Kurshan, and Matthias Leippe for providing reagents, Steven Cook for providing illustrations and Michael Gershon and members of the Hobert lab for comments on the manuscript. 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The authors show that a single homeodomain transcription factor has a central role in specifying the diverse neuron types of the enteric nervous system of the <italic>C. elegans</italic> pharynx. By linking cell fates across a single, largely self-contained circuit, these studies support the emerging idea that transcriptional control can link cell fate to circuit connectivity and function.</p></body></sub-article><sub-article article-type="decision-letter" id="sa1"><front-stub><article-id pub-id-type="doi">10.7554/eLife.76003.sa1</article-id><title-group><article-title>Decision letter</article-title></title-group><contrib-group content-type="section"><contrib contrib-type="editor"><name><surname>Portman</surname><given-names>Douglas</given-names></name><role>Reviewing Editor</role><aff><institution-wrap><institution-id institution-id-type="ror">https://ror.org/022kthw22</institution-id><institution>University of Rochester</institution></institution-wrap><country>United States</country></aff></contrib></contrib-group><contrib-group><contrib contrib-type="reviewer"><name><surname>Portman</surname><given-names>Douglas</given-names></name><role>Reviewer</role><aff><institution-wrap><institution-id institution-id-type="ror">https://ror.org/022kthw22</institution-id><institution>University of Rochester</institution></institution-wrap><country>United States</country></aff></contrib><contrib contrib-type="reviewer"><name><surname>Thor</surname><given-names>Stefan</given-names></name><role>Reviewer</role><aff><institution-wrap><institution-id institution-id-type="ror">https://ror.org/00rqy9422</institution-id><institution>University of Queensland</institution></institution-wrap><country>Australia</country></aff></contrib></contrib-group></front-stub><body><boxed-text id="sa2-box1"><p>Our editorial process produces two outputs: i) <ext-link ext-link-type="uri" xlink:href="https://sciety.org/articles/activity/10.1101/2021.11.30.470650">public reviews</ext-link> designed to be posted alongside <ext-link ext-link-type="uri" xlink:href="https://www.biorxiv.org/content/10.1101/2021.11.30.470650v1">the preprint</ext-link> for the benefit of readers; ii) feedback on the manuscript for the authors, including requests for revisions, shown below. We also include an acceptance summary that explains what the editors found interesting or important about the work.</p></boxed-text><p><bold>Decision letter after peer review:</bold></p><p>Thank you for submitting your article &quot;The enteric nervous system of <italic>C. elegans</italic> is specified by the Sine Oculis-like homeobox gene <italic>ceh-34</italic>&quot; for consideration by <italic>eLife</italic>. Your article has been reviewed by 3 peer reviewers, including Douglas Portman as Reviewing Editor and Reviewer #1, and the evaluation has been overseen by Piali Sengupta as the Senior Editor. The following individuals involved in review of your submission have agreed to reveal their identity: Carlos Díaz-Balzac (Reviewer #1 co-reviewer); Stefan Thor (Reviewer #3).</p><p>The reviewers have discussed their reviews with one another, and the Reviewing Editor has drafted this to help you prepare a revised submission.</p><p>As you will see, all three reviewers find your work to be of significant interest. However, there are a number of points that need to be addressed for the claims of your paper to be fully supported. Further details and comments can be found in the individual reviews below; we hope these will be helpful.</p><p>Essential revisions:</p><p>1) Reviewers 1 and 3 note some concerns about the execution and interpretation of the post-embryonic depletion experiments. Please address these by further characterizing the phenotypes of ceh-34 depletion in larvae (particularly architecture and/or connectivity) and by determining the consequences of ceh-34 depletion in late larvae and/or adults.</p><p>2) Reviewers 1 and 2 have significant concerns about your use of the term &quot;enteric&quot;. Previous work (including WormAtlas, the canonical source) uses &quot;enteric&quot; to describe muscles and neurons involved in defecation behavior, and the pharynx is considered to be different from the gut. Please provide a more compelling rationale for redefining &quot;enteric&quot;, or instead use &quot;pharyngeal&quot; in the title and main text and speculate about &quot;enteric&quot; in the Discussion.</p><p>3) Reviewers 1 and 3 point out the lack of ectopic/mis-expression experiments. At a minimum, please test the sufficiency of ceh-34 expression for promoting pharyngeal neuron characteristics; ideally, this would be done by testing combinatorial sufficiency using both ceh-34 and one or more of its partners.</p><p>4) Reviewer 3 makes additional points about the rigor of the combinatorial code studies (point 2) that can be addressed by examining additional markers and/or modifying the text.</p><p>5) All three reviewers have comments about the significance of the &quot;dimming&quot; of reporter expression that is seen in a number of experiments. These can be addressed with modification of the text and figures.</p><p>6) Reviewer 2 notes issues regarding ceh-34 genetics (points 3 and 6) and methods (point 7) that should be addressed in a resubmission.</p><p>7) As noted by Reviewer 2, the paper would be strengthened by reporting the functional consequences of ceh-34 loss. As this could be seen as being beyond the scope of the paper, we do not consider these revisions essential, but please consider addressing this point by, for example, disrupting ceh-34 function specifically in M4 (Reviewer #2, point 5).</p><p><italic>Reviewer #1 (Recommendations for the authors):</italic></p><p>1. The authors showed that postembryonic depletion of ceh-34 results in lack of expression of eat-4/VgluT and unc-17/VAChT, but do not comment on whether it also affects pharyngeal nervous system architecture. Asking whether ceh-34 is required postembyronically for the maintenance of architecture/morphology/connectivity would be useful.</p><p>2. Figures4C and 5C overstate the requirement for ceh-34 in gene expression. For a number of reporters (glr-2 and several neuropeptides) expression is not completely abolished in ceh-34 mutants, as the figure suggests. Lightly shading the appropriate neurons on the right side would be a more accurate representation of the results. (Also, I wonder whether the residual expression of some of these reporters might depend on ceh-33 – it might be useful for the authors to comment/speculate here.)</p><p>3. Authors state that &quot;Constitutive auxin exposure does not phenocopy the larval arrest phenotype of ceh-34 null mutants&quot; (p. 13). I assume &quot;constitutive&quot; means beginning at hatching (Figure 7)? I wouldn't really consider this constitutive, as embryonic ceh-34 function would be unaffected. It would be interesting to know whether exposing mothers (perhaps starting in L3/L4) to auxin would lead to more severe effects in their progeny. Along these lines, it would also be interesting to know how long the requirement for ceh-34 persists. Does auxin treatment of adults have an effect on pharyngeal neuron gene expression and/or pharynx function?</p><p>4. None of the studies in this paper explore potential instructive roles of ceh-34 using ectopic expression experiments. Would expression of ceh-34 (perhaps together with another homeodomain partner and/or eya-1) in another neuron type activate pharyngeal targets? Would expression in nearby neurons bring about synaptic connectivity? I realize these questions might not be as straightforward to ask as they seem, but some attempt to address them would be useful. At a minimum it would be informative for the authors to speculate about this in the Discussion.</p><p><italic>Reviewer #2 (Recommendations for the authors):</italic></p><p>I encourage authors to carefully consider terminology used and to condense the data presentation. The manuscript would also be strengthened by some experiments that speak to the functional consequences of ceh-34 mutation.</p><p>Major concerns:</p><p>(1) The authors should carefully consider calling the pharyngeal nervous system the 'enteric' nervous system. This seems to be a discussion point, but the authors have elevated it to being a fact.</p><p>(2) The authors look at many aspects of cell fate in the pharyngeal nervous system but they do not consider one that has been previously reported: programmed cell deaths (PCDs) in the lineages that generate the pharyngeal nervous system. Does deletion of ceh-34 cause widespread defects in PCD and the appearance of extra neurons?</p><p>(3) An allele of ceh-34 was previously isolated by a screen to identify factors that specified the cell death of the M4 neuron (Hirose et al., 2010, PMID 17942697). This mutant allele is reported to carry a mutation that disrupts a splice-acceptor sequence. The authors refer to this allele as a missense allele – is this correct? The authors refer to this allele as a hypomorphic allele because it does not display the L1 arrest defect that is caused by deletion of ceh-34. It is important to show that this allele does indeed have residual function; the interpretation of data shown in figures 10 and 11 hinges upon this issue.</p><p>(4) Quantification of gene expression defects in Figures 11 and 12 has a qualitative component. How are cells assigned to the 'dim' category? The method should be more clearly explained or gene expression should be quantified.</p><p>(5) Only one pharyngeal neuron – M4 – is required for viability. The authors' model strongly suggests that manipulating ceh-34 in this neuron will either cause or rescue the observed L1 arrest defect. If possible, this should be tested. In a similar vein, there are conditions that allow the growth of M4-ablated animals, and the authors' model predicts that these conditions will bypass a requirement for CEH-34. This could also be tested.</p><p>(6) The authors should determine whether the M4-specific expression of CEH-28 requires CEH-34. If CEH-28 expression persists in the absence of CEH-34, the authors should revise their discussion to more clearly address the possibility that CEH-34-independent mechanisms determine neuronal cell fates in the pharyngeal nervous system.</p><p>(7) In eya-1 mutants, cell bodies are mispositioned. How do the authors know the identities of the cells they are counting if they cannot rely on nuclear position or cell morphology?</p><p><italic>Reviewer #3 (Recommendations for the authors):</italic></p><p>1) Figure 7: They claim that ceh-34 is required to maintain differentiated features. But the auxin treatment, and the degradation of ceh-34, is conducted immediately after the worms have hatched into L1. Can they treat the worms as adults instead, and/or L2-L4, and score e.g., eat-4 expression? Moreover, they claim that ceh-34 is required to maintain differentiated features. But they only test two markers, eat-4 and unc-17, and eat-4 is only affected in some cells and unc-17 is only reduced. What happens to all the other 20-30 markers that were analysed in the constitutive mutant allele? This part of the manuscript is quite interesting but does not hold the same rigour as the rest of the study.</p><p>2) The mutant analysis of the other TFs is not comprehensive, with few markers analysed and not all TFs analysed. For unc-86 it has only a minor effect (dimmed expression of cat-1). They refer to a previous study where unc-86 was found to &quot;affect many but not all NSN marker genes&quot;; which? For ttx-3, they refer to the same previous study, where it was found to be a &quot;regulator of NSM differentiation&quot;, but the phenotype and markers are not outlined. ceh-14 has no effect on its own and ceh-2 shows only dimming of markers in I3. Basically, the combinatorial coding halters in its description and in the observed phenotypes.</p><p>3) On the same topic, there is no discussion of what complete loss of a marker versus &quot;dimming&quot; means. Specifically, if two TFs are acting in a combinatorial code to dictate a specific neuronal cell-fate, possibly acting cooperatively on the same set of downstream genes (enhancers), but one shows complete loss of marker expression and the other &quot;dimming&quot;, what does this mean with regards to TFs-enhancer logic?</p><p>4) They only test the necessity of the genes. While this is certainly the most important issue, many genes may be necessary for a cell's differentiation without really governing its fate. For instance, eye-specific mutant screens in <italic>Drosophila</italic> identified some 9% of all genes as being necessary for eye development (~1,500 genes). However, only a few of these can act to dictate eye development. The study would be greatly strengthened by single and combinatorial misexpression experiments, to probe if these TF codes are also sufficient to dictate cell fate in other cells. Combinatorial misexpression has been extensively done in <italic>Drosophila</italic>, zebrafish, chick, mouse and iPSC, with stellar results, and the worm is lagging behind in this space.</p><p>[Editors’ note: further revisions were suggested prior to acceptance, as described below.]</p><p>Thank you for resubmitting your work entitled &quot;The enteric nervous system of <italic>C. elegans</italic> is specified by the Sine Oculis-like homeobox gene <italic>ceh-34</italic>&quot; for further consideration by <italic>eLife</italic>. Your revised article has been evaluated by Piali Sengupta (Senior Editor) and a Reviewing Editor.</p><p>The original reviewers have seen and discussed your responses to the initial reviews. All reviewers agree that you have addressed the majority of their concerns and that the paper is nearly ready for publication. However, there are two remaining issues we would like you to address.</p><p>1) The reviewers appreciate the detailed rationale you have provided regarding the use of the term &quot;enteric.&quot; They largely agree with your point that it is &quot;justified to call the pharyngeal nervous system an enteric nervous system.&quot; However, in your paper, and particularly in the title, you refer to this as &quot;<italic>the</italic> enteric nervous system&quot; of <italic>C. elegans</italic>. This seems to imply that DVB and AVL, which innervate enteric muscles, should not be considered enteric. Is there a way for you to make the point that the pharyngeal nervous system should be considered part of the enteric nervous system without implying that it is its sole component?</p><p>2) Regarding the new misexpression experiments, the reviewers find the results of these studies interesting and feel that they will be useful to others in the field. Some of the reviewers find it surprising that you observed limited effects in these experiments, since in other systems, researchers have obtained robust ectopic generation of various neuronal sub-types by co-misexpression of 2-4 TFs. Further, one reviewer notes that studies in other systems have found that &quot;TF co-misexpression can simply add ectopic neurotransmitter expression on top on the already existing one, hence creating a mixed cell fate,&quot; which means that it is not always necessary to &quot;override the endogenous differentiation program,&quot; as may be the case in your studies. To address these points, the reviewers would like to you include the new misexpression data in the manuscript, perhaps in an additional supplementary figure, and discuss this issue more thoroughly in the Discussion.</p></body></sub-article><sub-article article-type="reply" id="sa2"><front-stub><article-id pub-id-type="doi">10.7554/eLife.76003.sa2</article-id><title-group><article-title>Author response</article-title></title-group></front-stub><body><disp-quote content-type="editor-comment"><p>Essential revisions:</p><p>1) Reviewers 1 and 3 note some concerns about the execution and interpretation of the post-embryonic depletion experiments. Please address these by further characterizing the phenotypes of ceh-34 depletion in larvae (particularly architecture and/or connectivity) and by determining the consequences of ceh-34 depletion in late larvae and/or adults.</p></disp-quote><p>The postembryonic depletion experiments have been very substantially improved: (a) we have now done the depletion from adult, rather than larval stage animals, and maintenance defects are confirmed; (b) we have tested additional cell fate markers (total of four instead of the original two); (c) we have undertaken a functional analysis, showing that adult (or larval) <italic>ceh-34</italic> depletion results in (expected) pharyngeal pumping defects; (d) we have shown that adult (or larval) <italic>ceh-34</italic> depletion results in synaptic disorganization. These are striking results that forcefully illustrate the importance of <italic>ceh-34</italic> not only in circuit development, but also circuit maintenance.</p><disp-quote content-type="editor-comment"><p>2) Reviewers 1 and 2 have significant concerns about your use of the term &quot;enteric&quot;. Previous work (including WormAtlas, the canonical source) uses &quot;enteric&quot; to describe muscles and neurons involved in defecation behavior, and the pharynx is considered to be different from the gut. Please provide a more compelling rationale for redefining &quot;enteric&quot;, or instead use &quot;pharyngeal&quot; in the title and main text and speculate about &quot;enteric&quot; in the Discussion.</p></disp-quote><p>Calling pharyngeal neurons enteric neurons is not novel; a recent publication from the Flavell lab has begun to do so (PMID 30580965). Irrespective of this precedent, such naming is in our opinion very well justified and the reasoning is as follows:</p><p>(a) As per any animal anatomical textbook definition, the enteric nervous system is the nervous system of the gastrointestinal system.</p><p>(b) Again, as per any textbook definition, the foregut is part of the gastrointestinal system.</p><p>(c) The pharynx is the worm foregut and hence, the nervous system of the pharynx constitutes an enteric nervous system. (The foregut terminology for the worm pharynx has been used extensively before in the literature and for a good reason: Most animals, including mammals and humans, have a pharynx, which is considered part of the foregut. The only “unusual” thing about worms is that its pharynx is the only part of the foregut, while in other animals (incl. us), the foregut contains the pharynx, plus additional subdivisions, like the esophagus).</p><p>(d) As importantly, the classification of the pharyngeal nervous system as an enteric system is also underscored by functional criteria: The two most distinguishing features of an enteric nervous system in animals, namely (i) its autonomous function and (ii) its rhythmic control of peristaltic movement are the defining features of the pharyngeal nervous system as well.</p><p>(e) Lastly, the AVL and DVB neurons have also been labeled – justifiably so – enteric neurons before. What those neurons do is to innervate the HINDGUT, not more, not less. By the same token, neurons that innervate the FOREGUT deserve to be called enteric neurons as well – as they actually are across animal phylogeny (as explained above).</p><p>We conclude that it is therefore justified to call the pharyngeal nervous system an enteric nervous system.</p><p>We have carefully considered this matter and have also double-checked this terminology issue with the world expert of animal enteric nervous systems, our colleague Mike Gershon, who authored the book “The second brain” ( = the enteric nervous system).</p><p>We re-iterate these points in our individual response to each reviewer (who appear to be more intrigued than opposed to this) and we also revised the introduction on page 2 to make the point above a little more clearly and to avoid the impression that the pharyngeal nervous system has always been called an enteric nervous system.</p><disp-quote content-type="editor-comment"><p>3) Reviewers 1 and 3 point out the lack of ectopic/mis-expression experiments. At a minimum, please test the sufficiency of ceh-34 expression for promoting pharyngeal neuron characteristics; ideally, this would be done by testing combinatorial sufficiency using both ceh-34 and one or more of its partners.</p></disp-quote><p>We have now done several such experiments: We have co-misexpressed two homeobox genes (<italic>unc-86</italic> and <italic>ttx-3</italic>) that we know to be required for NSM differentiation throughout the pharyngeal nervous system (that already expresses <italic>ceh-34</italic> and its cofactor <italic>eya-1</italic>) and found that each one of three transgenic lines displayed 10-40% penetrant NSM marker ectopic expression but only in two of the 14 pharyngeal neuron classes. Moreover, we have misexpressed the same two NSM regulators (<italic>unc-86</italic>, <italic>ttx-3</italic>) together with <italic>ceh-34</italic> and its cofactor <italic>eya-1</italic> outside the pharyngeal nervous system in a diverse set of ~8 neuron classes (using the <italic>unc-47</italic> driver) and found exceptionally low penetrant effect in two lines (1 animal out of ~50 scored, in two lines).</p><p>These very limited defects are entirely expected, based on two confounding factors: (1) In contrast to necessity experiments, where removal of single factors can and does result in differentiation defects, sufficiency require the misexpression of the COMPLETE set of TFs involved in identity specification. We apparently do not know the complete set of regulators for all pharyngeal neurons. (2) As importantly, ectopically expressed TFs need to override the endogenous differentiation program of a neuron. As we have explicitly shown in a paper in <italic>eLife</italic> in 2017 (Patel and Hobert), terminal differentiation does not only involve the activation of a specific gene battery, but also involves the active repression of alternative differentiation programs, likely via chromatin-based mechanisms. Hence, misexpression of a (likely insufficient) combination of TFs is unlikely to result in strong effects. We do mention these negative results and their interpretation now in the Discussion, as requested by the reviewer.</p><disp-quote content-type="editor-comment"><p>4) Reviewer 3 makes additional points about the rigor of the combinatorial code studies (point 2) that can be addressed by examining additional markers and/or modifying the text.</p></disp-quote><p>Reviewer 3 does not question the rigor of the combinatorial analysis, but the extent to which this analysis was done. He stated that we only looked at some potential cofactors and at some terminal markers. That is true. We only analyzed a subset of potential homeobox cofactors and only a limited number of markers, but we ask to please take the scope of our analysis into account: At the end of the day, we analyze 10 homeobox genes in the context of eight (of the 14) different pharyngeal neuron classes. Several of these homeobox genes had never been functionally analyzed before and for several of these neuron classes, no identity regulator had been identified. Given the normal standard of cell fate analysis (most often analyzing one or two genes in one neuron), we think that the extent of our analysis is already quite extensive as is.</p><p>However, having defended our analysis as is, we have added more data in the revised version of the manuscript:</p><p>1) We added the mutant analysis of the worm homolog of the Prospero homeobox gene, <italic>pros<sup>-1</sup>,</italic> whose function had not previously been characterized at all in the nervous system; we found it to be expressed in the pharyngeal I3 neuron and observed differentiation defects, therefore making it another <italic>ceh-34</italic> collaborator. The addition of this data also meant the addition of another author on this paper (Molly B Reilly), who had been studying <italic>pros<sup>-1</sup></italic> on the side.</p><p>2) We added another marker for <italic>ceh-2</italic> mutant analysis</p><p>3) We had included in our analysis only phylogenetically conserved homeobox genes. Out of curiosity, we had also undertaken an analysis of three unusual, non-conserved homeobox genes, each of which expressed in subsets of pharyngeal neurons. We did not observe any defects of null mutant alleles that we generated for these genes, either alone or in combination with the <italic>ceh-34</italic> hypomorphic allele. This data is now added into the manuscript as well.</p><p>It is clear that the cofactor analysis is just at its beginning. Our sole purpose here was to show that <italic>ceh-34</italic> does interact with distinct homeobox genes in distinct pharyngeal neuron classes. More analysis clearly is required to fully define the complete set of interacting transcription factors. Given the amount of data already present in the manuscript, we feel that more analysis of these cofactors should be left to future studies.</p><disp-quote content-type="editor-comment"><p>5) All three reviewers have comments about the significance of the &quot;dimming&quot; of reporter expression that is seen in a number of experiments. These can be addressed with modification of the text and figures.</p></disp-quote><p>Addressed, as described in response to individual reviewers.</p><disp-quote content-type="editor-comment"><p>6) Reviewer 2 notes issues regarding ceh-34 genetics (points 3 and 6) and methods (point 7) that should be addressed in a resubmission.</p></disp-quote><p>Yes, fixed.</p><disp-quote content-type="editor-comment"><p>7) As noted by Reviewer 2, the paper would be strengthened by reporting the functional consequences of ceh-34 loss. As this could be seen as being beyond the scope of the paper, we do not consider these revisions essential, but please consider addressing this point by, for example, disrupting ceh-34 function specifically in M4 (Reviewer #2, point 5).</p></disp-quote><p>We now provide such functional analysis. In the original version of the manuscript, we had only described the L1 arrest phenotype of the null allele. In this revised version we have circumvented this arrest phenotype by removing <italic>ceh-34</italic> only from adult animals (using the AID system) and found that in those animals pharyngeal pumping is – as expected from disabling the pharyngeal/enteric nervous system – defective.</p><disp-quote content-type="editor-comment"><p>Reviewer #1 (Recommendations for the authors):</p><p>1. The authors showed that postembryonic depletion of ceh-34 results in lack of expression of eat-4/VgluT and unc-17/VAChT, but do not comment on whether it also affects pharyngeal nervous system architecture. Asking whether ceh-34 is required postembyronically for the maintenance of architecture/morphology/connectivity would be useful.</p></disp-quote><p>We thank the reviewer for this very good suggestion; our use of the AID allele for cell fate analysis much pre-dated our analysis of anatomy and we never revisited the issue. We have now assessed synaptic organization after larval or adult depletion of CEH-34 and found this to result in the formation of aberrant presynaptic clusters, indicating that CEH-34 is also required to maintain synaptic architecture.</p><p>In addition, we have also now assessed the functional consequences of larval or adult CEH-34 depletion and found strong pharyngeal pumping defects, as expected from CEH-34 being continuously required to maintain gene expression in pharyngeal neurons. These results are now shown in Figure 7 and Figure 8-Supplement.</p><disp-quote content-type="editor-comment"><p>2. Figures4C and 5C overstate the requirement for ceh-34 in gene expression. For a number of reporters (glr-2 and several neuropeptides) expression is not completely abolished in ceh-34 mutants, as the figure suggests. Lightly shading the appropriate neurons on the right side would be a more accurate representation of the results. (Also, I wonder whether the residual expression of some of these reporters might depend on ceh-33 – it might be useful for the authors to comment/speculate here.)</p></disp-quote><p>Yes, good point. Light shading implemented now in Figures.</p><p>In regard to <italic>ceh-33</italic>, the gene is not expressed in pharyngeal neurons. We think it is more parsimonious to ascribe this residual expression to the activity of cofactors of <italic>ceh-34 –</italic> described later in the manuscript. We now make a statement to this effect on p.8.</p><disp-quote content-type="editor-comment"><p>3. Authors state that &quot;Constitutive auxin exposure does not phenocopy the larval arrest phenotype of ceh-34 null mutants&quot; (p. 13). I assume &quot;constitutive&quot; means beginning at hatching (Figure 7)? I wouldn't really consider this constitutive, as embryonic ceh-34 function would be unaffected. It would be interesting to know whether exposing mothers (perhaps starting in L3/L4) to auxin would lead to more severe effects in their progeny. Along these lines, it would also be interesting to know how long the requirement for ceh-34 persists. Does auxin treatment of adults have an effect on pharyngeal neuron gene expression and/or pharynx function?</p></disp-quote><p>Constitutive actually means exposure from parental generation throughout progeny. The original auxin publication, as well as ensuing studies, shows that auxin also works in embryos, i.e. that auxin-exposed adults deliver auxin to developing progeny in utero. Such constitutive exposure indeed reduces ceh-34::gfp::AID both embryonically and postembryonically. However, we still see clear hints of very dim expression – hence, explaining why we only see partial phenotypes. We have since repeated these experiments with a modified AID system (5-Ph-IAA/TIR1<sup>F79G</sup>) that was recently published, but which still did not completely remove all CEH-34 protein.</p><p>With the caveat of incomplete depletion in mind, we have pursued <italic>ceh-34</italic> removal at the adult stage, as the reviewer suggests. This worked essentially as well as the constitutive removal, i.e. we observed that multiple markers (we tested two more markers than in the original submission) fail to be properly maintained upon adult removal of <italic>ceh-34</italic>. We have also analyzed functional consequences of adult <italic>ceh-34</italic> removal and found that, as expected, animals display pharyngeal pumping defects.</p><disp-quote content-type="editor-comment"><p>4. None of the studies in this paper explore potential instructive roles of ceh-34 using ectopic expression experiments. Would expression of ceh-34 (perhaps together with another homeodomain partner and/or eya-1) in another neuron type activate pharyngeal targets? Would expression in nearby neurons bring about synaptic connectivity? I realize these questions might not be as straightforward to ask as they seem, but some attempt to address them would be useful. At a minimum it would be informative for the authors to speculate about this in the Discussion.</p></disp-quote><p>We have now done several ectopic expression experiments: We have co-misexpressed two homeobox genes (<italic>unc-86</italic> and <italic>ttx-3</italic>) that we know to be required for NSM differentiation throughout the pharyngeal nervous system (that already expresses <italic>ceh-34</italic> and its cofactor <italic>eya-1</italic>) and found that each one of three transgenic lines displayed 10-40% penetrant ectopic expression of an NSM marker gene but only in two of the 14 pharyngeal neuron classes. Moreover, we have misexpressed the same two NSM regulators (<italic>unc-86</italic>, <italic>ttx-3</italic>) together with <italic>ceh-34</italic> and its cofactor <italic>eya-1</italic> outside the pharyngeal nervous system in a diverse set of ~8 neuron classes (using the <italic>unc-47</italic> driver) and found exceptionally low penetrant effect in two lines (1 animal out of ~50 scored, in two lines).</p><p>These very limited defects are entirely expected, based on two confounding factors: (1) In contrast to necessity experiments, where removal of single factors can and does result in differentiation defects, sufficiency require the misexpression of the COMPLETE set of TFs involved in identity specification. We apparently do not know the complete set of regulators for all pharyngeal neurons. (2) As importantly, ectopically expressed TFs need to override the endogenous differentiation program of a neuron. As we have explicitly shown in a paper in <italic>eLife</italic> in 2017 (Patel and Hobert), terminal differentiation does not only involve the activation of a specific gene battery, but also involves the active repression of alternative differentiation programs, likely via chromatin-based mechanisms. Hence, misexpression of a (likely insufficient) combination of TFs is unlikely to result in strong effects. We do mention these negative results and their interpretation now in the Discussion, as requested by the reviewer.</p><disp-quote content-type="editor-comment"><p>Reviewer #2 (Recommendations for the authors):</p><p>I encourage authors to carefully consider terminology used and to condense the data presentation. The manuscript would also be strengthened by some experiments that speak to the functional consequences of ceh-34 mutation.</p><p>(1) The authors should carefully consider calling the pharyngeal nervous system the 'enteric' nervous system. This seems to be a discussion point, but the authors have elevated it to being a fact.</p></disp-quote><p>Calling pharyngeal neurons enteric neurons is not novel; a recent publication from the Flavell lab has begun to do so (PMID 30580965). Irrespective of this precedent, such naming is in our opinion very well justified and the reasoning is as follows:</p><p>(a) As per any animal anatomical textbook definition, the enteric nervous system is the nervous system of the gastrointestinal system.</p><p>(b) Again, as per any textbook definition, the foregut is part of the gastrointestinal system.</p><p>(c) The pharynx is the worm foregut and hence, the nervous system of the pharynx constitutes an enteric nervous system. (The foregut terminology for the worm pharynx has been used extensively before in the literature and for a good reason: Most animals, including mammals and humans, have a pharynx, which is considered part of the foregut. The only “unusual” thing about worms is that its pharynx is the only part of the foregut, while in other animals (incl. us), the foregut contains the pharynx, plus additional subdivisions, like the esophagus).</p><p>(d) As importantly, the classification of the pharyngeal nervous system as an enteric system is also underscored by functional criteria:</p><p>The two most distinguishing features of an enteric nervous system in animals, namely (i) its autonomous function and (ii) its rhythmic control of peristaltic movement are the defining features of the pharyngeal nervous system as well.</p><p>(e) Lastly, the AVL and DVB neurons have also been labeled – justifiably so – enteric neurons before. What those neurons do is to innervate the HINDGUT, not more, not less. By the same token, neurons that innervate the FOREGUT deserve to be called enteric neurons as well – as they actually are across animal phylogeny (as explained above).</p><p>We conclude that it is therefore justified to call the pharyngeal nervous system an enteric nervous system.</p><p>We have carefully considered this matter and have also double-checked this terminology issue with the world expert of animal enteric nervous systems, our colleague Mike Gershon, who authored the book “The second brain” ( = the enteric nervous system).</p><p>In the revised version, we clarify this definitional issue in the Introduction (page 2 and 3).</p><disp-quote content-type="editor-comment"><p>(2) The authors look at many aspects of cell fate in the pharyngeal nervous system but they do not consider one that has been previously reported: programmed cell deaths (PCDs) in the lineages that generate the pharyngeal nervous system. Does deletion of ceh-34 cause widespread defects in PCD and the appearance of extra neurons?</p></disp-quote><p>This is a good question. It so happens that we have inadvertently looked at this issue by checking whether <italic>ceh-34</italic> affects <italic>pha-4</italic> expression. <italic>pha-4</italic> is a marker of all pharyngeal cells. By carefully scoring the number of pha-4prom-positive cells, we observe no significant change in overall number of cells (Figure 2 – Suppl 2). In the revised version, we now mention this on p.7/8.</p><p>In terms of specifically looking at neurons: We have not seen extra neurons with our cell-specific markers (no surprise because they are usually off), but we could in theory observe extra neurons with a pan-neuronal marker – and we indeed scored multiple pan-neuronal markers in <italic>ceh-34</italic> null mutants (Figure 3A) – however, unlike in the case of <italic>pha-4</italic>, which is nicely restricted to the pharynx, the number of cells expressing pan-neuronal markers is hard to precisely score because pharyngeal tissue is surrounded by non-pharyngeal neurons. Due to the pharyngeal tissue disorganization in <italic>ceh-34</italic> mutants, it’s hard to say whether certain signals come from pharyngeal or non-pharyngeal cells. Superficially, there is no obvious difference.</p><disp-quote content-type="editor-comment"><p>(3) An allele of ceh-34 was previously isolated by a screen to identify factors that specified the cell death of the M4 neuron (Hirose et al., 2010, PMID 17942697). This mutant allele is reported to carry a mutation that disrupts a splice-acceptor sequence. The authors refer to this allele as a missense allele – is this correct? The authors refer to this allele as a hypomorphic allele because it does not display the L1 arrest defect that is caused by deletion of ceh-34. It is important to show that this allele does indeed have residual function; the interpretation of data shown in figures 10 and 11 hinges upon this issue.</p></disp-quote><p>Thanks for catching this misnomer – the hypomorphic allele that we used is indeed not a missense, but a splice site mutation. But it is definitively a hypomorphic allele. We can infer that it has residual function because of the much weaker phenotypes it has on neuronal cell fate markers compared to the null allele. For example, compare effect on <italic>unc-17</italic> or <italic>eat-4</italic> expression in Figure 10/11 with those of the null (Figure 3).</p><disp-quote content-type="editor-comment"><p>(4) Quantification of gene expression defects in Figures 11 and 12 has a qualitative component. How are cells assigned to the 'dim' category? The method should be more clearly explained or gene expression should be quantified.</p></disp-quote><p>The binning into loss of expression or dim expression is now explained in the methods.</p><disp-quote content-type="editor-comment"><p>(5) Only one pharyngeal neuron – M4 – is required for viability. The authors' model strongly suggests that manipulating ceh-34 in this neuron will either cause or rescue the observed L1 arrest defect. If possible, this should be tested. In a similar vein, there are conditions that allow the growth of M4-ablated animals, and the authors' model predicts that these conditions will bypass a requirement for CEH-34. This could also be tested.</p></disp-quote><p>These are good points. However, we caution that <italic>ceh-34</italic> is also expressed in two pharyngeal muscle (pm1/2) and pharyngeal epithelial cells (e1/e2) that are involved in attaching the pharynx to the mouth. <italic>ceh-34</italic> could potentially function in those cells too.</p><p>The bigger picture question that we think the reviewer is getting at (based also on the reviewer’s public review at the beginning) is an assessment of the functional, i.e. behavioral consequences of <italic>ceh-34</italic> removal. In the revised version of the manuscript, we have now addressed this question via AID-system-mediated removal of CEH-34 from young adult animals: these animals display severe defects in pharyngeal pumping, as one would expect from disabling the pharyngeal nervous system. This data is now shown in Figure 7.</p><disp-quote content-type="editor-comment"><p>(6) The authors should determine whether the M4-specific expression of CEH-28 requires CEH-34. If CEH-28 expression persists in the absence of CEH-34, the authors should revise their discussion to more clearly address the possibility that CEH-34-independent mechanisms determine neuronal cell fates in the pharyngeal nervous system.</p></disp-quote><p>We tested <italic>ceh-28</italic> expression, as requested, and found that <italic>ceh-34</italic> affects its expression. Now shown in Figure 6 – Supplement 2.</p><disp-quote content-type="editor-comment"><p>(7) In eya-1 mutants, cell bodies are mispositioned. How do the authors know the identities of the cells they are counting if they cannot rely on nuclear position or cell morphology?</p></disp-quote><p>In our hands, cell body positions were not as badly mispositioned to prevent unambiguous assignment of neuronal identities with markers expressed in limited numbers of cells, neither in the previously available ok allele, nor our own new null allele.</p><disp-quote content-type="editor-comment"><p>Reviewer #3 (Recommendations for the authors):</p><p>1) Figure 7: They claim that ceh-34 is required to maintain differentiated features. But the auxin treatment, and the degradation of ceh-34, is conducted immediately after the worms have hatched into L1. Can they treat the worms as adults instead, and/or L2-L4, and score e.g., eat-4 expression? Moreover, they claim that ceh-34 is required to maintain differentiated features. But they only test two markers, eat-4 and unc-17, and eat-4 is only affected in some cells and unc-17 is only reduced. What happens to all the other 20-30 markers that were analysed in the constitutive mutant allele? This part of the manuscript is quite interesting but does not hold the same rigour as the rest of the study.</p></disp-quote><p>We have done the experiments suggested by the reviewer:</p><p>1) We have now removed <italic>ceh-34</italic> in the adult stage and still observed a failure to maintain the differentiated state; this is indeed a much better experiment than our previous L1 experiments and we are grateful that the reviewer pushed us in this direction.</p><p>2) We have done the adult removal not just with the two original markers (ACh/unc-17 and Glu/eat4), but have added two additional markers. Again, maintenance defects are observed. We note that these 4 markers provide a broad coverage of pharyngeal neuronal cell types.</p><p>3) Rather than testing more markers, we have undertaken a functional analysis, asking whether <italic>ceh-34</italic> removal in the adult results in expected pharyngeal pumping defects. We found this to be indeed the case.</p><p>All the new data is now included in Figure 7.</p><p>4) Lastly, we now also add data that shows that synaptic organization becomes disorganized upon adult removal of <italic>ceh-34</italic>.</p><p>Taken together, these findings clearly demonstrate a continuous requirement for CEH-34 even in adult animals.</p><disp-quote content-type="editor-comment"><p>2) The mutant analysis of the other TFs is not comprehensive, with few markers analysed and not all TFs analysed. For unc-86 it has only a minor effect (dimmed expression of cat-1). They refer to a previous study where unc-86 was found to &quot;affect many but not all NSN marker genes&quot;; which? For ttx-3, they refer to the same previous study, where it was found to be a &quot;regulator of NSM differentiation&quot;, but the phenotype and markers are not outlined. ceh-14 has no effect on its own and ceh-2 shows only dimming of markers in I3. Basically, the combinatorial coding halters in its description and in the observed phenotypes.</p></disp-quote><p>Yes, we only analyzed a subset of potential homeobox cofactors and only a limited number of markers, but we ask the reviewer to please take the scope of our analysis into account: At the end of the day, we analyze 10 homeobox genes in the context of eight (of the 14) different pharyngeal neuron classes. Several of these homeobox genes had never been functionally analyzed before and for several of these neuron classes, no identity regulator had been identified. Given the normal standard of cell fate analysis (most often analyzing one or two genes in one neuron), we think that the extent of our analysis is already quite extensive as is. However, having defended our analysis as is, we have added more data in the revised version of the manuscript:</p><p>1) We added the mutant analysis of the worm homolog of the Prospero homeobox gene, <italic>pros<sup>-1</sup>,</italic> whose function had not previously been analyzed at all in the nervous system; we found it to be expressed in the pharyngeal I3 neuron and observed differentiation defects, therefore making it another <italic>ceh-34</italic> collaborator. The addition of this data also meant the addition of another author on this paper, who had been studying <italic>pros<sup>-1</sup></italic> on the side.</p><p>2) We added another marker for <italic>ceh-2</italic> mutant analysis</p><p>3) We had included in our analysis only phylogenetically conserved homeobox genes. Out of curiosity, we had also undertaken an analysis of three unusual, non-conserved homeobox genes, each of which expressed in subsets of pharyngeal neurons. We did not observe any defects of null mutant alleles that we generated for these genes, either alone or in combination with the <italic>ceh-34</italic> hypomorphic allele. This data is now added into the manuscript as well (text and Figure 11-Suppl.1).</p><p>In regard to the specific nature of the defects that we observe and that the reviewer comments on: In a previous analysis of the NSM neurons, we had shown that two genes, <italic>unc-86</italic> and <italic>ttx-3</italic> have synergistic effects on proper NSM neuron differentiation. Several differentiation markers were only partially affected in the single mutants, but a much stronger, if not complete loss was observed in the double mutant. We add <italic>ceh-34</italic> here into the picture by showing that much like <italic>ttx-3</italic>, a <italic>ceh-34</italic> hypomorph also synergizes with <italic>unc-86</italic> to control NSM differentiation. In another neuron class, I3, a homeobox gene <italic>ceh-2</italic> has alone also merely limited effects, but synergized with <italic>ceh-34</italic>. In yet other neuron classes, the collaborating homeobox gene has as strong defects as the <italic>ceh-34</italic> mutation has. The role of these additional homeobox genes as collaborators of <italic>ceh-34</italic> is further corroborated by the enrichment of binding sites for these cofactors (in addition to <italic>ceh-34</italic>) in the gene batteries of the individual neuron classes (as brought up in the Discussion).</p><p>Taken together, it is clear that the cofactor analysis is just at its beginning. Our sole purpose here was to show that <italic>ceh-34</italic> does interact with distinct homeobox genes in distinct pharyngeal neuron classes. More analysis clearly is required to fully define the complete set of interacting transcription factors. Given the amount of data already present in the manuscript, we feel that more analysis of these cofactors should be left to future studies.</p><disp-quote content-type="editor-comment"><p>3) On the same topic, there is no discussion of what complete loss of a marker versus &quot;dimming&quot; means. Specifically, if two TFs are acting in a combinatorial code to dictate a specific neuronal cell-fate, possibly acting cooperatively on the same set of downstream genes (enhancers), but one shows complete loss of marker expression and the other &quot;dimming&quot;, what does this mean with regards to TFs-enhancer logic?</p></disp-quote><p>This is an excellent question. “Dimming” vs complete expression elimination is something that we have observed – and to a good extent also explained – in the context of transcription factor mutant analysis in other cellular contexts. In some particularly well described case (<italic>ttx-3</italic>/<italic>ceh-10</italic> function in AIY neuron or <italic>unc-86</italic>/<italic>mec-3</italic> function in touch receptor neurons), TFs bind DNA cooperatively and loss of either factor alone essentially eliminates target gene expression. In other cases (e.g. dopamine neuron specification), we have observed an alternative logic, a so-called billboard logic, where TFs bind independently to DNA, and the sum of binding of multiple factors adds up to achieve full blown transcriptional activation; in such cases removal of individual factors results in partially expressive and or partially penetrant effects.</p><p>In the revised version, we now explain these issues in the discussion (p.21).</p><disp-quote content-type="editor-comment"><p>4) They only test the necessity of the genes. While this is certainly the most important issue, many genes may be necessary for a cell's differentiation without really governing its fate. For instance, eye-specific mutant screens in <italic>Drosophila</italic> identified some 9% of all genes as being necessary for eye development (~1,500 genes). However, only a few of these can act to dictate eye development. The study would be greatly strengthened by single and combinatorial misexpression experiments, to probe if these TF codes are also sufficient to dictate cell fate in other cells. Combinatorial misexpression has been extensively done in <italic>Drosophila</italic>, zebrafish, chick, mouse and iPSC, with stellar results, and the worm is lagging behind in this space.</p></disp-quote><p>We have now done several ectopic expression experiments: We have co-misexpressed two homeobox genes (<italic>unc-86</italic> and <italic>ttx-3</italic>) that we know to be required for NSM differentiation throughout the pharyngeal nervous system (that already expresses <italic>ceh-34</italic> and its cofactor <italic>eya-1</italic>) and found that each one of three transgenic lines displayed 10-40% penetrant NSM marker ectopic expression but only in two of the 14 pharyngeal neuron classes. Moreover, we have misexpressed the same two NSM regulators (<italic>unc-86</italic>, <italic>ttx-3</italic>) together with <italic>ceh-34</italic> and its cofactor <italic>eya-1</italic> outside the pharyngeal nervous system in a diverse set of ~8 neuron classes (using the <italic>unc-47</italic> driver) and found exceptionally low penetrant effect in two lines (1 animal out of ~50 scored, in two lines).</p><p>These very limited defects are entirely expected, based on two confounding factors: (1) In contrast to necessity experiments, where removal of single factors can and does result in differentiation defects, sufficiency require the misexpression of the COMPLETE set of TFs involved in identity specification. We apparently do not know the complete set of regulators for all pharyngeal neurons. (2) As importantly, ectopically expressed TFs need to override the endogenous differentiation program of a neuron. As we have explicitly shown in a paper in <italic>eLife</italic> in 2017 (Patel and Hobert), terminal differentiation does not only involve the activation of a specific gene battery, but also involves the active repression of alternative differentiation programs, likely via chromatin-based mechanisms. Hence, misexpression of a (likely insufficient) combination of TFs is unlikely to result in strong effects. We do mention these negative results and their interpretation now in the Discussion, as requested by the reviewer.</p><p>[Editors’ note: further revisions were suggested prior to acceptance, as described below.]</p><disp-quote content-type="editor-comment"><p>The original reviewers have seen and discussed your responses to the initial reviews. All reviewers agree that you have addressed the majority of their concerns and that the paper is nearly ready for publication. However, there are two remaining issues we would like you to address.</p><p>1) The reviewers appreciate the detailed rationale you have provided regarding the use of the term &quot;enteric.&quot; They largely agree with your point that it is &quot;justified to call the pharyngeal nervous system an enteric nervous system.&quot; However, in your paper, and particularly in the title, you refer to this as &quot;the enteric nervous system&quot; of <italic>C. elegans</italic>. This seems to imply that DVB and AVL, which innervate enteric muscles, should not be considered enteric. Is there a way for you to make the point that the pharyngeal nervous system should be considered part of the enteric nervous system without implying that it is its sole component?</p></disp-quote><p>We have changed the title to “The enteric nervous system of the <italic>C. elegans</italic> pharynx is specified…” to indicate that we are not dealing with AVL and DVB.</p><disp-quote content-type="editor-comment"><p>2) Regarding the new misexpression experiments, the reviewers find the results of these studies interesting and feel that they will be useful to others in the field. Some of the reviewers find it surprising that you observed limited effects in these experiments, since in other systems, researchers have obtained robust ectopic generation of various neuronal sub-types by co-misexpression of 2-4 TFs. Further, one reviewer notes that studies in other systems have found that &quot;TF co-misexpression can simply add ectopic neurotransmitter expression on top on the already existing one, hence creating a mixed cell fate,&quot; which means that it is not always necessary to &quot;override the endogenous differentiation program,&quot; as may be the case in your studies. To address these points, the reviewers would like to you include the new misexpression data in the manuscript, perhaps in an additional supplementary figure, and discuss this issue more thoroughly in the Discussion.</p></disp-quote><p>As requested, we have now included the ectopic expression data as a new Supplemental Figure on p.22. As you can see, there are some, albeit limited effects, altogether not too different from is observed in other organisms (where such ectopic expression experiments are usually limited to very few neurons, while we test effects here in <italic>all</italic> pharyngeal neurons). The accompanying text that discusses these results is:</p><p>“We found that the ectopic expression of pharyngeal homeobox genes reveal a limited capacity to respecify identity features of pharyngeal neuron (Figure 11 – Supplement 2). This is a likely reflection of our incomplete knowledge of the entire set of collaborating factors and possibly also a reflection of the difficulties associated with overriding endogenous terminal differentiation programs by ectopic expression of drivers of alternative fates (Patel and Hobert, 2017).”</p><p>We think there is not much more to discuss here.</p></body></sub-article></article>