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Tcf7 Is an Important Regulator of the Switch of Self-Renewal and Differentiation in a Multipotential Hematopoietic Cell Line

A critical problem in biology is understanding how cells choose between self-renewal and differentiation. To generate a comprehensive view of the mechanisms controlling early hematopoietic precursor self-renewal and differentiation, we used systems-based approaches and murine EML multipotential hema...

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Autores principales: Wu, Jia Qian, Seay, Montrell, Schulz, Vincent P., Hariharan, Manoj, Tuck, David, Lian, Jin, Du, Jiang, Shi, Minyi, Ye, Zhijia, Gerstein, Mark, Snyder, Michael P., Weissman, Sherman
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3297581/
https://www.ncbi.nlm.nih.gov/pubmed/22412390
http://dx.doi.org/10.1371/journal.pgen.1002565
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author Wu, Jia Qian
Seay, Montrell
Schulz, Vincent P.
Hariharan, Manoj
Tuck, David
Lian, Jin
Du, Jiang
Shi, Minyi
Ye, Zhijia
Gerstein, Mark
Snyder, Michael P.
Weissman, Sherman
author_facet Wu, Jia Qian
Seay, Montrell
Schulz, Vincent P.
Hariharan, Manoj
Tuck, David
Lian, Jin
Du, Jiang
Shi, Minyi
Ye, Zhijia
Gerstein, Mark
Snyder, Michael P.
Weissman, Sherman
author_sort Wu, Jia Qian
collection PubMed
description A critical problem in biology is understanding how cells choose between self-renewal and differentiation. To generate a comprehensive view of the mechanisms controlling early hematopoietic precursor self-renewal and differentiation, we used systems-based approaches and murine EML multipotential hematopoietic precursor cells as a primary model. EML cells give rise to a mixture of self-renewing Lin-SCA+CD34+ cells and partially differentiated non-renewing Lin-SCA-CD34− cells in a cell autonomous fashion. We identified and validated the HMG box protein TCF7 as a regulator in this self-renewal/differentiation switch that operates in the absence of autocrine Wnt signaling. We found that Tcf7 is the most down-regulated transcription factor when CD34+ cells switch into CD34− cells, using RNA–Seq. We subsequently identified the target genes bound by TCF7, using ChIP–Seq. We show that TCF7 and RUNX1 (AML1) bind to each other's promoter regions and that TCF7 is necessary for the production of the short isoforms, but not the long isoforms of RUNX1, suggesting that TCF7 and the short isoforms of RUNX1 function coordinately in regulation. Tcf7 knock-down experiments and Gene Set Enrichment Analyses suggest that TCF7 plays a dual role in promoting the expression of genes characteristic of self-renewing CD34+ cells while repressing genes activated in partially differentiated CD34− state. Finally a network of up-regulated transcription factors of CD34+ cells was constructed. Factors that control hematopoietic stem cell (HSC) establishment and development, cell growth, and multipotency were identified. These studies in EML cells demonstrate fundamental cell-intrinsic properties of the switch between self-renewal and differentiation, and yield valuable insights for manipulating HSCs and other differentiating systems.
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spelling pubmed-32975812012-03-12 Tcf7 Is an Important Regulator of the Switch of Self-Renewal and Differentiation in a Multipotential Hematopoietic Cell Line Wu, Jia Qian Seay, Montrell Schulz, Vincent P. Hariharan, Manoj Tuck, David Lian, Jin Du, Jiang Shi, Minyi Ye, Zhijia Gerstein, Mark Snyder, Michael P. Weissman, Sherman PLoS Genet Research Article A critical problem in biology is understanding how cells choose between self-renewal and differentiation. To generate a comprehensive view of the mechanisms controlling early hematopoietic precursor self-renewal and differentiation, we used systems-based approaches and murine EML multipotential hematopoietic precursor cells as a primary model. EML cells give rise to a mixture of self-renewing Lin-SCA+CD34+ cells and partially differentiated non-renewing Lin-SCA-CD34− cells in a cell autonomous fashion. We identified and validated the HMG box protein TCF7 as a regulator in this self-renewal/differentiation switch that operates in the absence of autocrine Wnt signaling. We found that Tcf7 is the most down-regulated transcription factor when CD34+ cells switch into CD34− cells, using RNA–Seq. We subsequently identified the target genes bound by TCF7, using ChIP–Seq. We show that TCF7 and RUNX1 (AML1) bind to each other's promoter regions and that TCF7 is necessary for the production of the short isoforms, but not the long isoforms of RUNX1, suggesting that TCF7 and the short isoforms of RUNX1 function coordinately in regulation. Tcf7 knock-down experiments and Gene Set Enrichment Analyses suggest that TCF7 plays a dual role in promoting the expression of genes characteristic of self-renewing CD34+ cells while repressing genes activated in partially differentiated CD34− state. Finally a network of up-regulated transcription factors of CD34+ cells was constructed. Factors that control hematopoietic stem cell (HSC) establishment and development, cell growth, and multipotency were identified. These studies in EML cells demonstrate fundamental cell-intrinsic properties of the switch between self-renewal and differentiation, and yield valuable insights for manipulating HSCs and other differentiating systems. Public Library of Science 2012-03-08 /pmc/articles/PMC3297581/ /pubmed/22412390 http://dx.doi.org/10.1371/journal.pgen.1002565 Text en This is an open-access article, free of all copyright, and may be freely reproduced, distributed, transmitted, modified, built upon, or otherwise used by anyone for any lawful purpose. The work is made available under the Creative Commons CC0 public domain dedication. https://creativecommons.org/publicdomain/zero/1.0/ This is an open-access article distributed under the terms of the Creative Commons Public Domain declaration, which stipulates that, once placed in the public domain, this work may be freely reproduced, distributed, transmitted, modified, built upon, or otherwise used by anyone for any lawful purpose.
spellingShingle Research Article
Wu, Jia Qian
Seay, Montrell
Schulz, Vincent P.
Hariharan, Manoj
Tuck, David
Lian, Jin
Du, Jiang
Shi, Minyi
Ye, Zhijia
Gerstein, Mark
Snyder, Michael P.
Weissman, Sherman
Tcf7 Is an Important Regulator of the Switch of Self-Renewal and Differentiation in a Multipotential Hematopoietic Cell Line
title Tcf7 Is an Important Regulator of the Switch of Self-Renewal and Differentiation in a Multipotential Hematopoietic Cell Line
title_full Tcf7 Is an Important Regulator of the Switch of Self-Renewal and Differentiation in a Multipotential Hematopoietic Cell Line
title_fullStr Tcf7 Is an Important Regulator of the Switch of Self-Renewal and Differentiation in a Multipotential Hematopoietic Cell Line
title_full_unstemmed Tcf7 Is an Important Regulator of the Switch of Self-Renewal and Differentiation in a Multipotential Hematopoietic Cell Line
title_short Tcf7 Is an Important Regulator of the Switch of Self-Renewal and Differentiation in a Multipotential Hematopoietic Cell Line
title_sort tcf7 is an important regulator of the switch of self-renewal and differentiation in a multipotential hematopoietic cell line
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3297581/
https://www.ncbi.nlm.nih.gov/pubmed/22412390
http://dx.doi.org/10.1371/journal.pgen.1002565
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