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Pioneer factors govern super-enhancer dynamics in stem cell plasticity and lineage choice

Adult stem cells (SCs) reside in niches which balance self-renewal with lineage selection and progression during tissue homeostasis. Following injury, culture or transplantation, SCs outside their niche often display fate flexibility(1-4). Here we show that super-enhancers(5) underlie the identity,...

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Autores principales: Adam, Rene C., Yang, Hanseul, Rockowitz, Shira, Larsen, Samantha B., Nikolova, Maria, Oristian, Daniel S., Polak, Lisa, Kadaja, Meelis, Asare, Amma, Zheng, Deyou, Fuchs, Elaine
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4482136/
https://www.ncbi.nlm.nih.gov/pubmed/25799994
http://dx.doi.org/10.1038/nature14289
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author Adam, Rene C.
Yang, Hanseul
Rockowitz, Shira
Larsen, Samantha B.
Nikolova, Maria
Oristian, Daniel S.
Polak, Lisa
Kadaja, Meelis
Asare, Amma
Zheng, Deyou
Fuchs, Elaine
author_facet Adam, Rene C.
Yang, Hanseul
Rockowitz, Shira
Larsen, Samantha B.
Nikolova, Maria
Oristian, Daniel S.
Polak, Lisa
Kadaja, Meelis
Asare, Amma
Zheng, Deyou
Fuchs, Elaine
author_sort Adam, Rene C.
collection PubMed
description Adult stem cells (SCs) reside in niches which balance self-renewal with lineage selection and progression during tissue homeostasis. Following injury, culture or transplantation, SCs outside their niche often display fate flexibility(1-4). Here we show that super-enhancers(5) underlie the identity, lineage commitment and plasticity of adult SCs in vivo. Using hair follicle (HF) as model, we map the global chromatin domains of HFSCs and their committed progenitors in their native microenvironments. We show that super-enhancers and their dense clusters (‘epicenters’) of transcription factor (TF) binding sites change upon lineage progression. New fate is acquired by decommissioning old and establishing new super-enhancers and/or epicenters, an auto-regulatory process that abates one master regulator subset while enhancing another. We further show that when outside their niche, either in vitro or in wound-repair, HFSCs dynamically remodel super-enhancers in response to changes in their microenvironment. Intriguingly, some key super-enhancers shift epicenters, enabling them to remain active and maintain a transitional state in an ever-changing transcriptional landscape. Finally, we identify SOX9 as a crucial chromatin rheostat of HFSC super-enhancers, and provide functional evidence that super-enhancers are dynamic, dense TF-binding platforms which are acutely sensitive to pioneer master regulators whose levels define not only spatial and temporal features of lineage-status, but also stemness, plasticity in transitional states and differentiation.
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spelling pubmed-44821362015-11-21 Pioneer factors govern super-enhancer dynamics in stem cell plasticity and lineage choice Adam, Rene C. Yang, Hanseul Rockowitz, Shira Larsen, Samantha B. Nikolova, Maria Oristian, Daniel S. Polak, Lisa Kadaja, Meelis Asare, Amma Zheng, Deyou Fuchs, Elaine Nature Article Adult stem cells (SCs) reside in niches which balance self-renewal with lineage selection and progression during tissue homeostasis. Following injury, culture or transplantation, SCs outside their niche often display fate flexibility(1-4). Here we show that super-enhancers(5) underlie the identity, lineage commitment and plasticity of adult SCs in vivo. Using hair follicle (HF) as model, we map the global chromatin domains of HFSCs and their committed progenitors in their native microenvironments. We show that super-enhancers and their dense clusters (‘epicenters’) of transcription factor (TF) binding sites change upon lineage progression. New fate is acquired by decommissioning old and establishing new super-enhancers and/or epicenters, an auto-regulatory process that abates one master regulator subset while enhancing another. We further show that when outside their niche, either in vitro or in wound-repair, HFSCs dynamically remodel super-enhancers in response to changes in their microenvironment. Intriguingly, some key super-enhancers shift epicenters, enabling them to remain active and maintain a transitional state in an ever-changing transcriptional landscape. Finally, we identify SOX9 as a crucial chromatin rheostat of HFSC super-enhancers, and provide functional evidence that super-enhancers are dynamic, dense TF-binding platforms which are acutely sensitive to pioneer master regulators whose levels define not only spatial and temporal features of lineage-status, but also stemness, plasticity in transitional states and differentiation. 2015-03-18 2015-05-21 /pmc/articles/PMC4482136/ /pubmed/25799994 http://dx.doi.org/10.1038/nature14289 Text en Reprints and permissions information is available at www.nature.com/reprints (http://www.nature.com/reprints) .
spellingShingle Article
Adam, Rene C.
Yang, Hanseul
Rockowitz, Shira
Larsen, Samantha B.
Nikolova, Maria
Oristian, Daniel S.
Polak, Lisa
Kadaja, Meelis
Asare, Amma
Zheng, Deyou
Fuchs, Elaine
Pioneer factors govern super-enhancer dynamics in stem cell plasticity and lineage choice
title Pioneer factors govern super-enhancer dynamics in stem cell plasticity and lineage choice
title_full Pioneer factors govern super-enhancer dynamics in stem cell plasticity and lineage choice
title_fullStr Pioneer factors govern super-enhancer dynamics in stem cell plasticity and lineage choice
title_full_unstemmed Pioneer factors govern super-enhancer dynamics in stem cell plasticity and lineage choice
title_short Pioneer factors govern super-enhancer dynamics in stem cell plasticity and lineage choice
title_sort pioneer factors govern super-enhancer dynamics in stem cell plasticity and lineage choice
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4482136/
https://www.ncbi.nlm.nih.gov/pubmed/25799994
http://dx.doi.org/10.1038/nature14289
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