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http://purl.uniprot.org/citations/34958748http://www.w3.org/1999/02/22-rdf-syntax-ns#typehttp://purl.uniprot.org/core/Journal_Citation
http://purl.uniprot.org/citations/34958748http://www.w3.org/2000/01/rdf-schema#comment"The primordia of the post-otic mouse embryo forms largely from a bipotential cell population containing neuromesodermal progenitors (NMP) which reside in the tail bud and contribute to the elaboration of the major body axis after gastrulation. The mechanisms by which the NMP population is both maintained and subsequently directed down mesodermal and neural lineages is incompletely understood. The vertebrate transcription factor Cdx2, is essential for axial elongation and has been implicated in maintaining the NMP niche and in specification of NMP derivatives. To better understand the role of the Cdx family in axial elongation, we employed a conditional mutant allele which evokes total loss of Cdx function, and enriched for tail bud progenitors through the use of a Pax2-GFP transgenic reporter. Using this approach, we identified 349 Cdx-dependent genes by RNA sequencing (RNA-seq). From these, Gene Ontology and chromatin immunoprecipitation analysis further revealed a number of putative direct Cdx candidate target genes implicated in axial elongation, including Sp8, Isl1, Evx1, Zic3 and Nr2f1. Additional analysis of available single-cell RNA-seq data from mouse tail buds revealed the co-expression of Sp8, Isl1, Evx1 and Zic3 with Cdx2 in putative NMP cells, while Nr2f1 was excluded from this population. These findings identify a number of novel Cdx targets and provide further insight into the critical roles for Cdx in elaborating the post-otic embryo."xsd:string
http://purl.uniprot.org/citations/34958748http://purl.org/dc/terms/identifier"doi:10.1016/j.ydbio.2021.12.011"xsd:string
http://purl.uniprot.org/citations/34958748http://purl.uniprot.org/core/author"Zhu Y."xsd:string
http://purl.uniprot.org/citations/34958748http://purl.uniprot.org/core/author"Lohnes D."xsd:string
http://purl.uniprot.org/citations/34958748http://purl.uniprot.org/core/date"2022"xsd:gYear
http://purl.uniprot.org/citations/34958748http://purl.uniprot.org/core/name"Dev Biol"xsd:string
http://purl.uniprot.org/citations/34958748http://purl.uniprot.org/core/pages"118-127"xsd:string
http://purl.uniprot.org/citations/34958748http://purl.uniprot.org/core/title"Regulation of axial elongation by Cdx."xsd:string
http://purl.uniprot.org/citations/34958748http://purl.uniprot.org/core/volume"483"xsd:string
http://purl.uniprot.org/citations/34958748http://www.w3.org/2004/02/skos/core#exactMatchhttp://purl.uniprot.org/pubmed/34958748
http://purl.uniprot.org/citations/34958748http://xmlns.com/foaf/0.1/primaryTopicOfhttps://pubmed.ncbi.nlm.nih.gov/34958748
http://purl.uniprot.org/uniprot/#_P18111-mappedCitation-34958748http://www.w3.org/1999/02/22-rdf-syntax-ns#objecthttp://purl.uniprot.org/citations/34958748
http://purl.uniprot.org/uniprot/#_P43241-mappedCitation-34958748http://www.w3.org/1999/02/22-rdf-syntax-ns#objecthttp://purl.uniprot.org/citations/34958748
http://purl.uniprot.org/uniprot/#_Q8BQI5-mappedCitation-34958748http://www.w3.org/1999/02/22-rdf-syntax-ns#objecthttp://purl.uniprot.org/citations/34958748
http://purl.uniprot.org/uniprot/#_Q543L9-mappedCitation-34958748http://www.w3.org/1999/02/22-rdf-syntax-ns#objecthttp://purl.uniprot.org/citations/34958748
http://purl.uniprot.org/uniprot/Q8BQI5http://purl.uniprot.org/core/mappedCitationhttp://purl.uniprot.org/citations/34958748
http://purl.uniprot.org/uniprot/P18111http://purl.uniprot.org/core/mappedCitationhttp://purl.uniprot.org/citations/34958748
http://purl.uniprot.org/uniprot/P43241http://purl.uniprot.org/core/mappedCitationhttp://purl.uniprot.org/citations/34958748
http://purl.uniprot.org/uniprot/Q543L9http://purl.uniprot.org/core/mappedCitationhttp://purl.uniprot.org/citations/34958748