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Transcriptional network governing extraembryonic endoderm cell fate choice

The mechanism by which transcription factor (TF) network instructs cell-type-specific transcriptional programs to drive primitive endoderm (PrE) progenitors to commit to parietal endoderm (PE) versus visceral endoderm (VE) cell fates remains poorly understood. To address the question, we analyzed th...

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Autores principales: Pham, Paula Duyen, Lu, Hanbin, Han, Han, Zhou, Jeff Jiajing, Madan, Aarushi, Wang, Wenqi, Murre, Cornelis, Cho, Ken W.Y.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10550205/
https://www.ncbi.nlm.nih.gov/pubmed/37423592
http://dx.doi.org/10.1016/j.ydbio.2023.07.002
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author Pham, Paula Duyen
Lu, Hanbin
Han, Han
Zhou, Jeff Jiajing
Madan, Aarushi
Wang, Wenqi
Murre, Cornelis
Cho, Ken W.Y.
author_facet Pham, Paula Duyen
Lu, Hanbin
Han, Han
Zhou, Jeff Jiajing
Madan, Aarushi
Wang, Wenqi
Murre, Cornelis
Cho, Ken W.Y.
author_sort Pham, Paula Duyen
collection PubMed
description The mechanism by which transcription factor (TF) network instructs cell-type-specific transcriptional programs to drive primitive endoderm (PrE) progenitors to commit to parietal endoderm (PE) versus visceral endoderm (VE) cell fates remains poorly understood. To address the question, we analyzed the single-cell transcriptional signatures defining PrE, PE, and VE cell states during the onset of the PE-VE lineage bifurcation. By coupling with the epigenomic comparison of active enhancers unique to PE and VE cells, we identified GATA6, SOX17, and FOXA2 as central regulators for the lineage divergence. Transcriptomic analysis of cXEN cells, an in vitro model for PE cells, after the acute depletion of GATA6 or SOX17 demonstrated that these factors induce Mycn, imparting the self-renewal properties of PE cells. Concurrently, they suppress the VE gene program, including key genes like Hnf4a and Ttr, among others. We proceeded with RNA-seq analysis on cXEN cells with FOXA2 knockout, in conjunction with GATA6 or SOX17 depletion. We found FOXA2 acts as a potent suppressor of Mycn while simultaneously activating the VE gene program. The antagonistic gene regulatory activities of GATA6/SOX17 and FOXA2 in promoting alternative cell fates, and their physical co-bindings at the enhancers provide molecular insights to the plasticity of the PrE lineage. Finally, we show that the external cue, BMP signaling, promotes the VE cell fate by activation of VE TFs and repression of PE TFs including GATA6 and SOX17. These data reveal a putative core gene regulatory module that underpins PE and VE cell fate choice.
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spelling pubmed-105502052023-10-04 Transcriptional network governing extraembryonic endoderm cell fate choice Pham, Paula Duyen Lu, Hanbin Han, Han Zhou, Jeff Jiajing Madan, Aarushi Wang, Wenqi Murre, Cornelis Cho, Ken W.Y. Dev Biol Article The mechanism by which transcription factor (TF) network instructs cell-type-specific transcriptional programs to drive primitive endoderm (PrE) progenitors to commit to parietal endoderm (PE) versus visceral endoderm (VE) cell fates remains poorly understood. To address the question, we analyzed the single-cell transcriptional signatures defining PrE, PE, and VE cell states during the onset of the PE-VE lineage bifurcation. By coupling with the epigenomic comparison of active enhancers unique to PE and VE cells, we identified GATA6, SOX17, and FOXA2 as central regulators for the lineage divergence. Transcriptomic analysis of cXEN cells, an in vitro model for PE cells, after the acute depletion of GATA6 or SOX17 demonstrated that these factors induce Mycn, imparting the self-renewal properties of PE cells. Concurrently, they suppress the VE gene program, including key genes like Hnf4a and Ttr, among others. We proceeded with RNA-seq analysis on cXEN cells with FOXA2 knockout, in conjunction with GATA6 or SOX17 depletion. We found FOXA2 acts as a potent suppressor of Mycn while simultaneously activating the VE gene program. The antagonistic gene regulatory activities of GATA6/SOX17 and FOXA2 in promoting alternative cell fates, and their physical co-bindings at the enhancers provide molecular insights to the plasticity of the PrE lineage. Finally, we show that the external cue, BMP signaling, promotes the VE cell fate by activation of VE TFs and repression of PE TFs including GATA6 and SOX17. These data reveal a putative core gene regulatory module that underpins PE and VE cell fate choice. 2023-10 2023-07-07 /pmc/articles/PMC10550205/ /pubmed/37423592 http://dx.doi.org/10.1016/j.ydbio.2023.07.002 Text en https://creativecommons.org/licenses/by-nc/4.0/This is an open access article under the CC BY-NC license (http://creativecommons.org/licenses/by-nc/4.0/ (https://creativecommons.org/licenses/by-nc/4.0/) ).
spellingShingle Article
Pham, Paula Duyen
Lu, Hanbin
Han, Han
Zhou, Jeff Jiajing
Madan, Aarushi
Wang, Wenqi
Murre, Cornelis
Cho, Ken W.Y.
Transcriptional network governing extraembryonic endoderm cell fate choice
title Transcriptional network governing extraembryonic endoderm cell fate choice
title_full Transcriptional network governing extraembryonic endoderm cell fate choice
title_fullStr Transcriptional network governing extraembryonic endoderm cell fate choice
title_full_unstemmed Transcriptional network governing extraembryonic endoderm cell fate choice
title_short Transcriptional network governing extraembryonic endoderm cell fate choice
title_sort transcriptional network governing extraembryonic endoderm cell fate choice
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10550205/
https://www.ncbi.nlm.nih.gov/pubmed/37423592
http://dx.doi.org/10.1016/j.ydbio.2023.07.002
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