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Integrative and perturbation‐based analysis of the transcriptional dynamics of TGFβ/BMP system components in transition from embryonic stem cells to neural progenitors

Cooperative actions of extrinsic signals and cell‐intrinsic transcription factors alter gene regulatory networks enabling cells to respond appropriately to environmental cues. Signaling by transforming growth factor type β (TGFβ) family ligands (eg, bone morphogenetic proteins [BMPs] and Activin/Nod...

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Autores principales: Dries, Ruben, Stryjewska, Agata, Coddens, Kathleen, Okawa, Satoshi, Notelaers, Tineke, Birkhoff, Judith, Dekker, Mike, Verfaillie, Catherine M., del Sol, Antonio, Mulugeta, Eskeatnaf, Conidi, Andrea, Grosveld, Frank G., Huylebroeck, Danny
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley & Sons, Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7027912/
https://www.ncbi.nlm.nih.gov/pubmed/31675135
http://dx.doi.org/10.1002/stem.3111
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author Dries, Ruben
Stryjewska, Agata
Coddens, Kathleen
Okawa, Satoshi
Notelaers, Tineke
Birkhoff, Judith
Dekker, Mike
Verfaillie, Catherine M.
del Sol, Antonio
Mulugeta, Eskeatnaf
Conidi, Andrea
Grosveld, Frank G.
Huylebroeck, Danny
author_facet Dries, Ruben
Stryjewska, Agata
Coddens, Kathleen
Okawa, Satoshi
Notelaers, Tineke
Birkhoff, Judith
Dekker, Mike
Verfaillie, Catherine M.
del Sol, Antonio
Mulugeta, Eskeatnaf
Conidi, Andrea
Grosveld, Frank G.
Huylebroeck, Danny
author_sort Dries, Ruben
collection PubMed
description Cooperative actions of extrinsic signals and cell‐intrinsic transcription factors alter gene regulatory networks enabling cells to respond appropriately to environmental cues. Signaling by transforming growth factor type β (TGFβ) family ligands (eg, bone morphogenetic proteins [BMPs] and Activin/Nodal) exerts cell‐type specific and context‐dependent transcriptional changes, thereby steering cellular transitions throughout embryogenesis. Little is known about coordinated regulation and transcriptional interplay of the TGFβ system. To understand intrafamily transcriptional regulation as part of this system's actions during development, we selected 95 of its components and investigated their mRNA‐expression dynamics, gene‐gene interactions, and single‐cell expression heterogeneity in mouse embryonic stem cells transiting to neural progenitors. Interrogation at 24 hour intervals identified four types of temporal gene transcription profiles that capture all stages, that is, pluripotency, epiblast formation, and neural commitment. Then, between each stage we performed esiRNA‐based perturbation of each individual component and documented the effect on steady‐state mRNA levels of the remaining 94 components. This exposed an intricate system of multilevel regulation whereby the majority of gene‐gene interactions display a marked cell‐stage specific behavior. Furthermore, single‐cell RNA‐profiling at individual stages demonstrated the presence of detailed co‐expression modules and subpopulations showing stable co‐expression modules such as that of the core pluripotency genes at all stages. Our combinatorial experimental approach demonstrates how intrinsically complex transcriptional regulation within a given pathway is during cell fate/state transitions.
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spelling pubmed-70279122020-02-24 Integrative and perturbation‐based analysis of the transcriptional dynamics of TGFβ/BMP system components in transition from embryonic stem cells to neural progenitors Dries, Ruben Stryjewska, Agata Coddens, Kathleen Okawa, Satoshi Notelaers, Tineke Birkhoff, Judith Dekker, Mike Verfaillie, Catherine M. del Sol, Antonio Mulugeta, Eskeatnaf Conidi, Andrea Grosveld, Frank G. Huylebroeck, Danny Stem Cells Embryonic Stem Cells/Induced Pluripotent Stem Cells Cooperative actions of extrinsic signals and cell‐intrinsic transcription factors alter gene regulatory networks enabling cells to respond appropriately to environmental cues. Signaling by transforming growth factor type β (TGFβ) family ligands (eg, bone morphogenetic proteins [BMPs] and Activin/Nodal) exerts cell‐type specific and context‐dependent transcriptional changes, thereby steering cellular transitions throughout embryogenesis. Little is known about coordinated regulation and transcriptional interplay of the TGFβ system. To understand intrafamily transcriptional regulation as part of this system's actions during development, we selected 95 of its components and investigated their mRNA‐expression dynamics, gene‐gene interactions, and single‐cell expression heterogeneity in mouse embryonic stem cells transiting to neural progenitors. Interrogation at 24 hour intervals identified four types of temporal gene transcription profiles that capture all stages, that is, pluripotency, epiblast formation, and neural commitment. Then, between each stage we performed esiRNA‐based perturbation of each individual component and documented the effect on steady‐state mRNA levels of the remaining 94 components. This exposed an intricate system of multilevel regulation whereby the majority of gene‐gene interactions display a marked cell‐stage specific behavior. Furthermore, single‐cell RNA‐profiling at individual stages demonstrated the presence of detailed co‐expression modules and subpopulations showing stable co‐expression modules such as that of the core pluripotency genes at all stages. Our combinatorial experimental approach demonstrates how intrinsically complex transcriptional regulation within a given pathway is during cell fate/state transitions. John Wiley & Sons, Inc. 2019-12-13 2020-02 /pmc/articles/PMC7027912/ /pubmed/31675135 http://dx.doi.org/10.1002/stem.3111 Text en ©2019 The Authors. stem cells published by Wiley Periodicals, Inc. on behalf of AlphaMed Press 2019 This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Embryonic Stem Cells/Induced Pluripotent Stem Cells
Dries, Ruben
Stryjewska, Agata
Coddens, Kathleen
Okawa, Satoshi
Notelaers, Tineke
Birkhoff, Judith
Dekker, Mike
Verfaillie, Catherine M.
del Sol, Antonio
Mulugeta, Eskeatnaf
Conidi, Andrea
Grosveld, Frank G.
Huylebroeck, Danny
Integrative and perturbation‐based analysis of the transcriptional dynamics of TGFβ/BMP system components in transition from embryonic stem cells to neural progenitors
title Integrative and perturbation‐based analysis of the transcriptional dynamics of TGFβ/BMP system components in transition from embryonic stem cells to neural progenitors
title_full Integrative and perturbation‐based analysis of the transcriptional dynamics of TGFβ/BMP system components in transition from embryonic stem cells to neural progenitors
title_fullStr Integrative and perturbation‐based analysis of the transcriptional dynamics of TGFβ/BMP system components in transition from embryonic stem cells to neural progenitors
title_full_unstemmed Integrative and perturbation‐based analysis of the transcriptional dynamics of TGFβ/BMP system components in transition from embryonic stem cells to neural progenitors
title_short Integrative and perturbation‐based analysis of the transcriptional dynamics of TGFβ/BMP system components in transition from embryonic stem cells to neural progenitors
title_sort integrative and perturbation‐based analysis of the transcriptional dynamics of tgfβ/bmp system components in transition from embryonic stem cells to neural progenitors
topic Embryonic Stem Cells/Induced Pluripotent Stem Cells
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7027912/
https://www.ncbi.nlm.nih.gov/pubmed/31675135
http://dx.doi.org/10.1002/stem.3111
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