<?xml version="1.0" ?>
<!DOCTYPE PubmedArticleSet PUBLIC "-//NLM//DTD PubMedArticle, 1st January 2025//EN" "https://dtd.nlm.nih.gov/ncbi/pubmed/out/pubmed_250101.dtd">
<PubmedArticleSet>
<PubmedArticle><MedlineCitation Status="MEDLINE" Owner="NLM" IndexingMethod="Manual"><PMID Version="1">17060451</PMID><DateCompleted><Year>2007</Year><Month>01</Month><Day>18</Day></DateCompleted><DateRevised><Year>2019</Year><Month>12</Month><Day>10</Day></DateRevised><Article PubModel="Print-Electronic"><Journal><ISSN IssnType="Print">0270-7306</ISSN><JournalIssue CitedMedium="Print"><Volume>27</Volume><Issue>1</Issue><PubDate><Year>2007</Year><Month>Jan</Month></PubDate></JournalIssue><Title>Molecular and cellular biology</Title><ISOAbbreviation>Mol Cell Biol</ISOAbbreviation></Journal><ArticleTitle>Gbx2 and Otx2 interact with the WD40 domain of Groucho/Tle corepressors.</ArticleTitle><Pagination><StartPage>340</StartPage><EndPage>351</EndPage><MedlinePgn>340-51</MedlinePgn></Pagination><Abstract><AbstractText>One of the earliest organizational decisions in the development of the vertebrate brain is the division of the neural plate into Otx2-positive anterior and Gbx2-positive posterior territories. At the junction of these two expression domains, a local signaling center is formed, known as the midbrain-hindbrain boundary (MHB). This tissue coordinates or "organizes" the development of neighboring brain structures, such as the midbrain and cerebellum. Correct positioning of the MHB is thought to depend on mutual repression involving these two homeobox genes. Using a cell culture colocalization assay and coimmunoprecipitation experiments, we show that engrailed homology region 1 (eh1)-like motifs of both transcription factors physically interact with the WD40 domain of Groucho/Tle corepressor proteins. In addition, heat shock-induced expression of wild-type and mutant Otx2 and Gbx2 in medaka embryos demonstrates that Groucho is required for the repression of Otx2 by Gbx2. On the other hand, the repressive functions of Otx2 on Gbx2 do not appear to be dependent on corepressor interaction. Interestingly, the association of Groucho with Otx2 is also required for the repression of Fgf8 in the MHB. Therefore Groucho/Tle family members appear to regulate key aspects in the MHB development of the vertebrate brain.</AbstractText></Abstract><AuthorList CompleteYN="Y"><Author ValidYN="Y"><LastName>Heimbucher</LastName><ForeName>Thomas</ForeName><Initials>T</Initials><AffiliationInfo><Affiliation>Institute of Animal Breeding and Genetics, University of Veterinary Medicine, Veterin&#xe4;rplatz 1, A-1210 Vienna, Austria.</Affiliation></AffiliationInfo></Author><Author ValidYN="Y"><LastName>Murko</LastName><ForeName>Christina</ForeName><Initials>C</Initials></Author><Author ValidYN="Y"><LastName>Bajoghli</LastName><ForeName>Baubak</ForeName><Initials>B</Initials></Author><Author ValidYN="Y"><LastName>Aghaallaei</LastName><ForeName>Narges</ForeName><Initials>N</Initials></Author><Author ValidYN="Y"><LastName>Huber</LastName><ForeName>Anja</ForeName><Initials>A</Initials></Author><Author ValidYN="Y"><LastName>Stebegg</LastName><ForeName>Ronald</ForeName><Initials>R</Initials></Author><Author ValidYN="Y"><LastName>Eberhard</LastName><ForeName>Dirk</ForeName><Initials>D</Initials></Author><Author ValidYN="Y"><LastName>Fink</LastName><ForeName>Maria</ForeName><Initials>M</Initials></Author><Author ValidYN="Y"><LastName>Simeone</LastName><ForeName>Antonio</ForeName><Initials>A</Initials></Author><Author ValidYN="Y"><LastName>Czerny</LastName><ForeName>Thomas</ForeName><Initials>T</Initials></Author></AuthorList><Language>eng</Language><PublicationTypeList><PublicationType UI="D016428">Journal Article</PublicationType><PublicationType UI="D013485">Research Support, Non-U.S. Gov't</PublicationType></PublicationTypeList><ArticleDate DateType="Electronic"><Year>2006</Year><Month>10</Month><Day>23</Day></ArticleDate></Article><MedlineJournalInfo><Country>United States</Country><MedlineTA>Mol Cell Biol</MedlineTA><NlmUniqueID>8109087</NlmUniqueID><ISSNLinking>0270-7306</ISSNLinking></MedlineJournalInfo><ChemicalList><Chemical><RegistryNumber>0</RegistryNumber><NameOfSubstance UI="D004268">DNA-Binding Proteins</NameOfSubstance></Chemical><Chemical><RegistryNumber>0</RegistryNumber><NameOfSubstance UI="C084958">GBX2 protein, human</NameOfSubstance></Chemical><Chemical><RegistryNumber>0</RegistryNumber><NameOfSubstance UI="C513182">Gbx2 protein, mouse</NameOfSubstance></Chemical><Chemical><RegistryNumber>0</RegistryNumber><NameOfSubstance UI="D018398">Homeodomain Proteins</NameOfSubstance></Chemical><Chemical><RegistryNumber>0</RegistryNumber><NameOfSubstance UI="D009687">Nuclear Proteins</NameOfSubstance></Chemical><Chemical><RegistryNumber>0</RegistryNumber><NameOfSubstance UI="C497659">OTX2 protein, human</NameOfSubstance></Chemical><Chemical><RegistryNumber>0</RegistryNumber><NameOfSubstance UI="D051857">Otx Transcription Factors</NameOfSubstance></Chemical><Chemical><RegistryNumber>0</RegistryNumber><NameOfSubstance UI="C497660">Otx2 protein, mouse</NameOfSubstance></Chemical><Chemical><RegistryNumber>0</RegistryNumber><NameOfSubstance UI="D012097">Repressor Proteins</NameOfSubstance></Chemical><Chemical><RegistryNumber>0</RegistryNumber><NameOfSubstance UI="C465817">TLE4 protein, human</NameOfSubstance></Chemical><Chemical><RegistryNumber>0</RegistryNumber><NameOfSubstance UI="C434949">Tle4 protein, mouse</NameOfSubstance></Chemical></ChemicalList><CitationSubset>IM</CitationSubset><MeshHeadingList><MeshHeading><DescriptorName UI="D000595" MajorTopicYN="N">Amino Acid Sequence</DescriptorName></MeshHeading><MeshHeading><DescriptorName UI="D000818" MajorTopicYN="N">Animals</DescriptorName></MeshHeading><MeshHeading><DescriptorName UI="D001921" MajorTopicYN="N">Brain</DescriptorName><QualifierName UI="Q000378" MajorTopicYN="N">metabolism</QualifierName></MeshHeading><MeshHeading><DescriptorName UI="D019556" MajorTopicYN="N">COS Cells</DescriptorName></MeshHeading><MeshHeading><DescriptorName UI="D002522" MajorTopicYN="N">Chlorocebus aethiops</DescriptorName></MeshHeading><MeshHeading><DescriptorName UI="D004268" MajorTopicYN="N">DNA-Binding Proteins</DescriptorName><QualifierName UI="Q000737" MajorTopicYN="Y">chemistry</QualifierName><QualifierName UI="Q000378" MajorTopicYN="N">metabolism</QualifierName></MeshHeading><MeshHeading><DescriptorName UI="D005786" MajorTopicYN="Y">Gene Expression Regulation</DescriptorName></MeshHeading><MeshHeading><DescriptorName UI="D018398" MajorTopicYN="N">Homeodomain Proteins</DescriptorName><QualifierName UI="Q000378" MajorTopicYN="N">metabolism</QualifierName><QualifierName UI="Q000502" MajorTopicYN="Y">physiology</QualifierName></MeshHeading><MeshHeading><DescriptorName UI="D006801" MajorTopicYN="N">Humans</DescriptorName></MeshHeading><MeshHeading><DescriptorName UI="D051379" MajorTopicYN="N">Mice</DescriptorName></MeshHeading><MeshHeading><DescriptorName UI="D008969" MajorTopicYN="N">Molecular Sequence Data</DescriptorName></MeshHeading><MeshHeading><DescriptorName UI="D041681" MajorTopicYN="N">NIH 3T3 Cells</DescriptorName></MeshHeading><MeshHeading><DescriptorName UI="D009687" MajorTopicYN="N">Nuclear Proteins</DescriptorName><QualifierName UI="Q000737" MajorTopicYN="Y">chemistry</QualifierName><QualifierName UI="Q000378" MajorTopicYN="N">metabolism</QualifierName></MeshHeading><MeshHeading><DescriptorName UI="D009990" MajorTopicYN="N">Oryzias</DescriptorName></MeshHeading><MeshHeading><DescriptorName UI="D051857" MajorTopicYN="N">Otx Transcription Factors</DescriptorName><QualifierName UI="Q000378" MajorTopicYN="N">metabolism</QualifierName><QualifierName UI="Q000502" MajorTopicYN="Y">physiology</QualifierName></MeshHeading><MeshHeading><DescriptorName UI="D012097" MajorTopicYN="N">Repressor Proteins</DescriptorName><QualifierName UI="Q000737" MajorTopicYN="Y">chemistry</QualifierName><QualifierName UI="Q000378" MajorTopicYN="N">metabolism</QualifierName></MeshHeading></MeshHeadingList></MedlineCitation><PubmedData><History><PubMedPubDate PubStatus="pubmed"><Year>2006</Year><Month>10</Month><Day>25</Day><Hour>9</Hour><Minute>0</Minute></PubMedPubDate><PubMedPubDate PubStatus="medline"><Year>2007</Year><Month>1</Month><Day>19</Day><Hour>9</Hour><Minute>0</Minute></PubMedPubDate><PubMedPubDate PubStatus="entrez"><Year>2006</Year><Month>10</Month><Day>25</Day><Hour>9</Hour><Minute>0</Minute></PubMedPubDate><PubMedPubDate PubStatus="pmc-release"><Year>2007</Year><Month>5</Month><Day>1</Day></PubMedPubDate></History><PublicationStatus>ppublish</PublicationStatus><ArticleIdList><ArticleId IdType="pubmed">17060451</ArticleId><ArticleId IdType="pmc">PMC1800652</ArticleId><ArticleId IdType="doi">10.1128/MCB.00811-06</ArticleId><ArticleId IdType="pii">MCB.00811-06</ArticleId></ArticleIdList><ReferenceList><Reference><Citation><b>Acampora, D., V. Avantaggiato, F. Tuorto, and A. Simeone.</b> 1997. Genetic control of brain morphogenesis through Otx gene dosage requirement. Development 124<b>:</b>3639-3650.</Citation><ArticleIdList><ArticleId IdType="pubmed">9342056</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Acampora, D., M. Gulisano, V. Broccoli, and A. Simeone.</b> 2001. Otx genes in brain morphogenesis. Prog. Neurobiol. 64<b>:</b>69-95.</Citation><ArticleIdList><ArticleId IdType="pubmed">11250063</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Acampora, D., S. Mazan, Y. Lallemand, V. Avantaggiato, M. Maury, A. Simeone, and P. Brulet.</b> 1995. Forebrain and midbrain regions are deleted in Otx2<sup>&#x2212;/&#x2212;</sup>mutants due to a defective anterior neuroectoderm specification during gastrulation. Development 121<b>:</b>3279-3290.</Citation><ArticleIdList><ArticleId IdType="pubmed">7588062</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Adams, B., P. Dorfler, A. Aguzzi, Z. Kozmik, P. Urbanek, I. Maurer Fogy, and M. Busslinger.</b> 1992. Pax-5 encodes the transcription factor BSAP and is expressed in B lymphocytes, the developing CNS, and adult testis. Genes Dev. 6<b>:</b>1589-1607.</Citation><ArticleIdList><ArticleId IdType="pubmed">1516825</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Aghaallaei, N., B. Bajoghli, I. Walter, and T. Czerny.</b> 2005. Duplicated members of the Groucho/Tle gene family in fish. Dev. Dyn. 234<b>:</b>143-150.</Citation><ArticleIdList><ArticleId IdType="pubmed">16059907</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Bajoghli, B., N. Aghaallaei, and T. Czerny.</b> 2005. Groucho corepressor proteins regulate otic vesicle outgrowth. Dev. Dyn. 233<b>:</b>760-771.</Citation><ArticleIdList><ArticleId IdType="pubmed">15861392</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Bajoghli, B., N. Aghaallaei, T. Heimbucher, and T. Czerny.</b> 2004. An artificial promoter construct for heat-inducible misexpression during fish embryogenesis. Dev. Biol. 271<b>:</b>416-430.</Citation><ArticleIdList><ArticleId IdType="pubmed">15223344</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Baker, A., M. Saltik, H. Lehrmann, I. Killisch, V. Mautner, G. Lamm, G. Christofori, and M. Cotten.</b> 1997. Polyethylenimine (PEI) is a simple, inexpensive and effective reagent for condensing and linking plasmid DNA to adenovirus for gene delivery. Gene Ther. 4<b>:</b>773-782.</Citation><ArticleIdList><ArticleId IdType="pubmed">9338005</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Brantjes, H., J. Roose, M. van De Weteringqq, and H. Clevers.</b> 2001. All Tcf HMG box transcription factors interact with Groucho-related co-repressors. Nucleic Acids Res. 29<b>:</b>1410-1419.</Citation><ArticleIdList><ArticleId IdType="pmc">PMC31284</ArticleId><ArticleId IdType="pubmed">11266540</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Braselmann, S., P. Graninger, and M. Busslinger.</b> 1993. A selective transcriptional induction system for mammalian cells based on Gal4-estrogen receptor fusion proteins. Proc. Natl. Acad. Sci. USA 90<b>:</b>1657-1661.</Citation><ArticleIdList><ArticleId IdType="pmc">PMC45938</ArticleId><ArticleId IdType="pubmed">8446579</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Broccoli, V., E. Boncinelli, and W. Wurst.</b> 1999. The caudal limit of Otx2 expression positions the isthmic organizer. Nature 401<b>:</b>164-168.</Citation><ArticleIdList><ArticleId IdType="pubmed">10490025</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Bulfone, A., L. Puelles, M. H. Porteus, M. A. Frohman, G. R. Martin, and J. L. Rubenstein.</b> 1993. Spatially restricted expression of Dlx-1, Dlx-2 (Tes-1), Gbx-2, and Wnt-3 in the embryonic day 12.5 mouse forebrain defines potential transverse and longitudinal segmental boundaries. J. Neurosci. 13<b>:</b>3155-3172.</Citation><ArticleIdList><ArticleId IdType="pmc">PMC6576688</ArticleId><ArticleId IdType="pubmed">7687285</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Cai, Y., P. D. Brophy, I. Levitan, S. Stifani, and G. R. Dressler.</b> 2003. Groucho suppresses Pax2 transactivation by inhibition of JNK-mediated phosphorylation. EMBO J. 22<b>:</b>5522-5529.</Citation><ArticleIdList><ArticleId IdType="pmc">PMC213790</ArticleId><ArticleId IdType="pubmed">14532124</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Cavallo, R. A., R. T. Cox, M. M. Moline, J. Roose, G. A. Polevoy, H. Clevers, M. Peifer, and A. Bejsovec.</b> 1998. <i>Drosophila</i> Tcf and Groucho interact to repress Wingless signalling activity. Nature 395<b>:</b>604-608.</Citation><ArticleIdList><ArticleId IdType="pubmed">9783586</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Chen, G., and A. J. Courey.</b> 2000. Groucho/TLE family proteins and transcriptional repression. Gene 249<b>:</b>1-16.</Citation><ArticleIdList><ArticleId IdType="pubmed">10831834</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Chen, G., J. Fernandez, S. Mische, and A. J. Courey.</b> 1999. A functional interaction between the histone deacetylase Rpd3 and the corepressor groucho in <i>Drosophila</i> development. Genes Dev. 13<b>:</b>2218-2230.</Citation><ArticleIdList><ArticleId IdType="pmc">PMC316998</ArticleId><ArticleId IdType="pubmed">10485845</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Chen, G., P. H. Nguyen, and A. J. Courey.</b> 1998. A role for Groucho tetramerization in transcriptional repression. Mol. Cell. Biol. 18<b>:</b>7259-7268.</Citation><ArticleIdList><ArticleId IdType="pmc">PMC109307</ArticleId><ArticleId IdType="pubmed">9819412</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Chiang, C., K. E. Young, and P. A. Beachy.</b> 1995. Control of <i>Drosophila</i> tracheal branching by the novel homeodomain gene unplugged, a regulatory target for genes of the bithorax complex. Development 121<b>:</b>3901-3912.</Citation><ArticleIdList><ArticleId IdType="pubmed">8582298</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Choi, C. Y., Y. H. Kim, H. J. Kwon, and Y. Kim.</b> 1999. The homeodomain protein NK-3 recruits Groucho and a histone deacetylase complex to repress transcription. J. Biol. Chem. 274<b>:</b>33194-33197.</Citation><ArticleIdList><ArticleId IdType="pubmed">10559189</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Courey, A. J., and J. D. Huang.</b> 1995. The establishment and interpretation of transcription factor gradients in the <i>Drosophila</i> embryo. Biochim. Biophys. Acta 1261<b>:</b>1-18.</Citation><ArticleIdList><ArticleId IdType="pubmed">7893745</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Dasen, J. S., J. P. Barbera, T. S. Herman, S. O. Connell, L. Olson, B. Ju, J. Tollkuhn, S. H. Baek, D. W. Rose, and M. G. Rosenfeld.</b> 2001. Temporal regulation of a paired-like homeodomain repressor/TLE corepressor complex and a related activator is required for pituitary organogenesis. Genes Dev. 15<b>:</b>3193-3207.</Citation><ArticleIdList><ArticleId IdType="pmc">PMC312840</ArticleId><ArticleId IdType="pubmed">11731482</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Dubnicoff, T., S. A. Valentine, G. Chen, T. Shi, J. A. Lengyel, Z. Paroush, and A. J. Courey.</b> 1997. Conversion of dorsal from an activator to a repressor by the global corepressor Groucho. Genes Dev. 11<b>:</b>2952-2957.</Citation><ArticleIdList><ArticleId IdType="pmc">PMC316698</ArticleId><ArticleId IdType="pubmed">9367978</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Eberhard, D., G. Jimenez, B. Heavey, and M. Busslinger.</b> 2000. Transcriptional repression by Pax5 (BSAP) through interaction with corepressors of the Groucho family. EMBO J. 19<b>:</b>2292-2303.</Citation><ArticleIdList><ArticleId IdType="pmc">PMC384353</ArticleId><ArticleId IdType="pubmed">10811620</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Fainsod, A., and Y. Greunbaum.</b> 1989. A chicken homeo box gene with developmentally regulated expression. FEBS Lett. 250<b>:</b>381-385.</Citation><ArticleIdList><ArticleId IdType="pubmed">2473919</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Fink, M., G. Flekna, A. Ludwig, T. Heimbucher, and T. Czerny.</b> 2006. Improved translation efficiency of injected mRNA during early embryonic development. Dev. Dyn.</Citation><ArticleIdList><ArticleId IdType="pubmed">17068769</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Fisher, A. L., and M. Caudy.</b> 1998. Groucho proteins: transcriptional corepressors for specific subsets of DNA-binding transcription factors in vertebrates and invertebrates. Genes Dev. 12<b>:</b>1931-1940.</Citation><ArticleIdList><ArticleId IdType="pubmed">9649497</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Garcia-Mata, R., Z. Bebok, E. J. Sorscher, and E. S. Sztul.</b> 1999. Characterization and dynamics of aggresome formation by a cytosolic GFP-chimera. J. Cell Biol. 146<b>:</b>1239-1254.</Citation><ArticleIdList><ArticleId IdType="pmc">PMC2156127</ArticleId><ArticleId IdType="pubmed">10491388</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Glavic, A., J. L. Gomez-Skarmeta, and R. Mayor.</b> 2002. The homeoprotein Xiro1 is required for midbrain-hindbrain boundary formation. Development 129<b>:</b>1609-1621.</Citation><ArticleIdList><ArticleId IdType="pubmed">11923198</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Iwamatsu, T.</b> 2004. Stages of normal development in the medaka Oryzias latipes. Mech. Dev. 121<b>:</b>605-618.</Citation><ArticleIdList><ArticleId IdType="pubmed">15210170</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Javed, A., B. Guo, S. Hiebert, J. Y. Choi, J. Green, S. C. Zhao, M. A. Osborne, S. Stifani, J. L. Stein, J. B. Lian, A. J. van Wijnen, and G. S. Stein.</b> 2000. Groucho/TLE/R-esp proteins associate with the nuclear matrix and repress RUNX (CBF(alpha)/AML/PEBP2(alpha))-dependent activation of tissue-specific gene transcription. J. Cell Sci. 113<b>:</b>2221-2231.</Citation><ArticleIdList><ArticleId IdType="pubmed">10825294</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Jennings, B. H., L. M. Pickles, S. M. Wainwright, S. M. Roe, L. H. Pearl, and D. Ish-Horowicz.</b> 2006. Molecular recognition of transcriptional repressor motifs by the WD domain of the Groucho/TLE corepressor. Mol. Cell 22<b>:</b>645-655.</Citation><ArticleIdList><ArticleId IdType="pubmed">16762837</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Jimenez, G., Z. Paroush, and D. Ish-Horowicz.</b> 1997. Groucho acts as a corepressor for a subset of negative regulators, including hairy and engrailed. Genes Dev. 11<b>:</b>3072-3082.</Citation><ArticleIdList><ArticleId IdType="pmc">PMC316696</ArticleId><ArticleId IdType="pubmed">9367988</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Jimenez, G., C. P. Verrijzer, and D. Ish-Horowicz.</b> 1999. A conserved motif in goosecoid mediates Groucho-dependent repression in <i>Drosophila</i> embryos. Mol. Cell. Biol. 19<b>:</b>2080-2087.</Citation><ArticleIdList><ArticleId IdType="pmc">PMC84001</ArticleId><ArticleId IdType="pubmed">10022895</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Joyner, A. L., A. Liu, and S. Millet.</b> 2000. Otx2, gbx2 and fgf8 interact to position and maintain a mid-hindbrain organizer. Curr. Opin. Cell Biol. 12<b>:</b>736-741.</Citation><ArticleIdList><ArticleId IdType="pubmed">11063941</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Katahira, T., T. Sato, S. Sugiyama, T. Okafuji, I. Araki, J. Funahashi, and H. Nakamura.</b> 2000. Interaction between Otx2 and Gbx2 defines the organizing center for the optic tectum. Mech. Dev. 91<b>:</b>43-52.</Citation><ArticleIdList><ArticleId IdType="pubmed">10704829</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Kikuta, H., M. Kanai, Y. Ito, and K. Yamasu.</b> 2003. gbx2 homeobox gene is required for the maintenance of the isthmic region in the zebrafish embryonic brain. Dev. Dyn. 228<b>:</b>433-450.</Citation><ArticleIdList><ArticleId IdType="pubmed">14579382</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Kobayashi, M., K. Nishikawa, T. Suzuki, and M. Yamamoto.</b> 2001. The homeobox protein Six3 interacts with the Groucho corepressor and acts as a transcriptional repressor in eye and forebrain formation. Dev. Biol. 232<b>:</b>315-326.</Citation><ArticleIdList><ArticleId IdType="pubmed">11401394</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Komachi, K., M. J. Redd, and A. D. Johnson.</b> 1994. The WD repeats of Tup1 interact with the homeo domain protein alpha 2. Genes Dev. 8<b>:</b>2857-2867.</Citation><ArticleIdList><ArticleId IdType="pubmed">7995523</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Koop, K. E., L. M. MacDonald, and C. G. Lobe.</b> 1996. Transcripts of Grg4, a murine Groucho-related gene, are detected in adjacent tissues to other murine neurogenic gene homologues during embryonic development. Mech. Dev. 59<b>:</b>73-87.</Citation><ArticleIdList><ArticleId IdType="pubmed">8892234</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Kowenz-Leutz, E., P. Herr, K. Niss, and A. Leutz.</b> 1997. The homeobox gene GBX2, a target of the myb oncogene, mediates autocrine growth and monocyte differentiation. Cell 91<b>:</b>185-195.</Citation><ArticleIdList><ArticleId IdType="pubmed">9346236</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Kurosawa, G., K. Yamada, H. Ishiguro, and H. Hori.</b> 1999. Hox gene complexity in medaka fish may be similar to that in pufferfish rather than zebrafish. Biochem. Biophys. Res. Commun. 260<b>:</b>66-70.</Citation><ArticleIdList><ArticleId IdType="pubmed">10381345</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Loosli, F., R. W. Koster, M. Carl, R. Kuhnlein, T. Henrich, M. Mucke, A. Krone, and J. Wittbrodt.</b> 2000. A genetic screen for mutations affecting embryonic development in medaka fish (<i>Oryzias latipes</i>). Mech. Dev. 97<b>:</b>133-139.</Citation><ArticleIdList><ArticleId IdType="pubmed">11025214</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Lopez-Rios, J., K. Tessmar, F. Loosli, J. Wittbrodt, and P. Bovolenta.</b> 2003. Six3 and Six6 activity is modulated by members of the Groucho family. Development 130<b>:</b>185-195.</Citation><ArticleIdList><ArticleId IdType="pubmed">12441302</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Matsuo, I., S. Kuratani, C. Kimura, N. Takeda, and S. Aizawa.</b> 1995. Mouse Otx2 functions in the formation and patterning of rostral head. Genes Dev. 9<b>:</b>2646-2658.</Citation><ArticleIdList><ArticleId IdType="pubmed">7590242</ArticleId></ArticleIdList></Reference><Reference><Citation><b>McLarren, K. W., R. Lo, D. Grbavec, K. Thirunavukkarasu, G. Karsenty, and S. Stifani.</b> 2000. The mammalian basic helix loop helix protein HES-1 binds to and modulates the transactivating function of the runt-related factor Cbfa1. J. Biol. Chem. 275<b>:</b>530-538.</Citation><ArticleIdList><ArticleId IdType="pubmed">10617648</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Millet, S., K. Campbell, D. J. Epstein, K. Losos, E. Harris, and A. L. Joyner.</b> 1999. A role for Gbx2 in repression of Otx2 and positioning the mid/hindbrain organizer. Nature 401<b>:</b>161-164.</Citation><ArticleIdList><ArticleId IdType="pubmed">10490024</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Morgan, R., M. H. Hooiveld, M. Pannese, G. Dati, F. Broders, M. Delarue, J. P. Thiery, E. Boncinelli, and A. J. Durston.</b> 1999. Calponin modulates the exclusion of Otx-expressing cells from convergence extension movements. Nat. Cell Biol. 1<b>:</b>404-408.</Citation><ArticleIdList><ArticleId IdType="pubmed">10559983</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Muhr, J., E. Andersson, M. Persson, T. M. Jessell, and J. Ericson.</b> 2001. Groucho-mediated transcriptional repression establishes progenitor cell pattern and neuronal fate in the ventral neural tube. Cell 104<b>:</b>861-873.</Citation><ArticleIdList><ArticleId IdType="pubmed">11290324</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Neer, E. J., C. J. Schmidt, R. Nambudripad, and T. F. Smith.</b> 1994. The ancient regulatory-protein family of WD-repeat proteins. Nature 371<b>:</b>297-300.</Citation><ArticleIdList><ArticleId IdType="pubmed">8090199</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Paroush, Z., R. L. Finley, T. Kidd, S. M. Wainwright, P. W. Ingham, R. Brent, and D. Ish-Horowicz.</b> 1994. Groucho is required for <i>Drosophila</i> neurogenesis, segmentation, and sex determination and interacts directly with hairy-related bHLH proteins. Cell 79<b>:</b>805-815.</Citation><ArticleIdList><ArticleId IdType="pubmed">8001118</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Pinto, M., and C. G. Lobe.</b> 1996. Products of the grg (Groucho-related gene) family can dimerize through the amino-terminal Q. domain. J. Biol. Chem. 271<b>:</b>33026-33031.</Citation><ArticleIdList><ArticleId IdType="pubmed">8955148</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Puelles, E., A. Annino, F. Tuorto, A. Usiello, D. Acampora, T. Czerny, C. Brodski, S. L. Ang, W. Wurst, and A. Simeone.</b> 2004. Otx2 regulates the extent, identity and fate of neuronal progenitor domains in the ventral midbrain. Development 131<b>:</b>2037-2048.</Citation><ArticleIdList><ArticleId IdType="pubmed">15105370</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Quiring, R., B. Wittbrodt, T. Henrich, M. Ramialison, C. Burgtorf, H. Lehrach, and J. Wittbrodt.</b> 2004. Large-scale expression screening by automated whole-mount in situ hybridization. Mech. Dev. 121<b>:</b>971-976.</Citation><ArticleIdList><ArticleId IdType="pubmed">15210201</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Raible, F., and M. Brand.</b> 2004. Divide et impera: the midbrain-hindbrain boundary and its organizer. Trends Neurosci. 27<b>:</b>727-734.</Citation><ArticleIdList><ArticleId IdType="pubmed">15541513</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Ren, B., K. J. Chee, T. H. Kim, and T. Maniatis.</b> 1999. PRDI-BF1/Blimp-1 repression is mediated by corepressors of the Groucho family of proteins. Genes Dev. 13<b>:</b>125-137.</Citation><ArticleIdList><ArticleId IdType="pmc">PMC316372</ArticleId><ArticleId IdType="pubmed">9887105</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Rhinn, M., K. Lun, A. Amores, Y. L. Yan, J. H. Postlethwait, and M. Brand.</b> 2003. Cloning, expression and relationship of zebrafish gbx1 and gbx2 genes to Fgf signaling. Mech. Dev. 120<b>:</b>919-936.</Citation><ArticleIdList><ArticleId IdType="pubmed">12963112</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Roose, J., M. Molenaar, J. Peterson, J. Hurenkamp, H. Brantjes, P. Moerer, M. van de Wetering, O. Destree, and H. Clevers.</b> 1998. The <i>Xenopus</i> Wnt effector XTcf-3 interacts with Groucho-related transcriptional repressors. Nature 395<b>:</b>608-612.</Citation><ArticleIdList><ArticleId IdType="pubmed">9783587</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Sato, T., A. L. Joyner, and H. Nakamura.</b> 2004. How does Fgf signaling from the isthmic organizer induce midbrain and cerebellum development? Dev. Growth Differ. 46<b>:</b>487-494.</Citation><ArticleIdList><ArticleId IdType="pubmed">15610138</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Simeone, A.</b> 2000. Positioning the isthmic organizer where Otx2 and Gbx2 meet. Trends Genet. 16<b>:</b>237-240.</Citation><ArticleIdList><ArticleId IdType="pubmed">10827447</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Simeone, A., D. Acampora, A. Mallamaci, A. Stornaiuolo, M. R. D'Apice, V. Nigro, and E. Boncinelli.</b> 1993. A vertebrate gene related to orthodenticle contains a homeodomain of the bicoid class and demarcates anterior neuroectoderm in the gastrulating mouse embryo. EMBO J. 12<b>:</b>2735-2747.</Citation><ArticleIdList><ArticleId IdType="pmc">PMC413524</ArticleId><ArticleId IdType="pubmed">8101484</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Smith, S. T., and J. B. Jaynes.</b> 1996. A conserved region of engrailed, shared among all en-, gsc-, Nk1-, Nk2- and msh-class homeoproteins, mediates active transcriptional repression in vivo. Development 122<b>:</b>3141-3150.</Citation><ArticleIdList><ArticleId IdType="pmc">PMC2729110</ArticleId><ArticleId IdType="pubmed">8898227</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Song, H., P. Hasson, Z. Paroush, and A. J. Courey.</b> 2004. Groucho oligomerization is required for repression in vivo. Mol. Cell. Biol. 24<b>:</b>4341-4350.</Citation><ArticleIdList><ArticleId IdType="pmc">PMC400465</ArticleId><ArticleId IdType="pubmed">15121853</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Stifani, S., C. M. Blaumueller, N. J. Redhead, R. E. Hill, and S. Artavanis-Tsakonas.</b> 1992. Human homologs of a <i>Drosophila</i> enhancer of split gene product define a novel family of nuclear proteins. Nat. Genet. 2<b>:</b>119-127.</Citation><ArticleIdList><ArticleId IdType="pubmed">1303260</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Thermes, V., C. Grabher, F. Ristoratore, F. Bourrat, A. Choulika, J. Wittbrodt, and J. S. Joly.</b> 2002. I-SceI meganuclease mediates highly efficient transgenesis in fish. Mech. Dev. 118<b>:</b>91-98.</Citation><ArticleIdList><ArticleId IdType="pubmed">12351173</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Tolkunova, E. N., M. Fujioka, M. Kobayashi, D. Deka, and J. B. Jaynes.</b> 1998. Two distinct types of repression domain in engrailed: one interacts with the Groucho corepressor and is preferentially active on integrated target genes. Mol. Cell. Biol. 18<b>:</b>2804-2814.</Citation><ArticleIdList><ArticleId IdType="pmc">PMC110659</ArticleId><ArticleId IdType="pubmed">9566899</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Tour, E., G. Pillemer, Y. Gruenbaum, and A. Fainsod.</b> 2002. Gbx2 interacts with Otx2 and patterns the anterior-posterior axis during gastrulation in <i>Xenopus</i>. Mech. Dev. 112<b>:</b>141-151.</Citation><ArticleIdList><ArticleId IdType="pubmed">11850185</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Wassarman, K. M., M. Lewandoski, K. Campbell, A. L. Joyner, J. L. R. Rubenstein, S. Martinez, and G. R. Martin.</b> 1997. Specification of the anterior hindbrain and establishment of a normal mid/hindbrain organizer is dependent on Gbx2 gene function. Development 124<b>:</b>2923-2934.</Citation><ArticleIdList><ArticleId IdType="pubmed">9247335</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Winnier, A. R., J. Y. Meir, J. M. Ross, N. Tavernarakis, M. Driscoll, T. Ishihara, I. Katsura, and D. M. Miller, 3rd.</b> 1999. UNC-4/UNC-37-dependent repression of motor neuron-specific genes controls synaptic choice in <i>Caenorhabditis elegans</i>. Genes Dev. 13<b>:</b>2774-2786.</Citation><ArticleIdList><ArticleId IdType="pmc">PMC317130</ArticleId><ArticleId IdType="pubmed">10557206</ArticleId></ArticleIdList></Reference><Reference><Citation><b>W&#xfc;lbeck, C., and J. A. Campos-Ortega.</b> 1997. Two zebrafish homologues of the <i>Drosophila</i> neurogenic gene <i>groucho</i> and their pattern of transcription during early embryogenesis. Dev. Genes Evol. 207<b>:</b>156-166.</Citation><ArticleIdList><ArticleId IdType="pubmed">27747413</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Wurst, W., and L. Bally-Cuif.</b> 2001. Neural plate patterning: upstream and downstream of the isthmic organizer. Nat. Rev. Neurosci 2<b>:</b>99-108.</Citation><ArticleIdList><ArticleId IdType="pubmed">11253000</ArticleId></ArticleIdList></Reference><Reference><Citation><b>Zhang, J., R. E. Campbell, A. Y. Ting, and R. Y. Tsien.</b> 2002. Creating new fluorescent probes for cell biology. Nat. Rev. Mol. Cell. Biol. 3<b>:</b>906-918.</Citation><ArticleIdList><ArticleId IdType="pubmed">12461557</ArticleId></ArticleIdList></Reference></ReferenceList></PubmedData></PubmedArticle></PubmedArticleSet>