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Time Scales in Epigenetic Dynamics and Phenotypic Heterogeneity of Embryonic Stem Cells

A remarkable feature of the self-renewing population of embryonic stem cells (ESCs) is their phenotypic heterogeneity: Nanog and other marker proteins of ESCs show large cell-to-cell variation in their expression level, which should significantly influence the differentiation process of individual c...

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Autores principales: Sasai, Masaki, Kawabata, Yudai, Makishi, Koh, Itoh, Kazuhito, Terada, Tomoki P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3861442/
https://www.ncbi.nlm.nih.gov/pubmed/24348228
http://dx.doi.org/10.1371/journal.pcbi.1003380
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author Sasai, Masaki
Kawabata, Yudai
Makishi, Koh
Itoh, Kazuhito
Terada, Tomoki P.
author_facet Sasai, Masaki
Kawabata, Yudai
Makishi, Koh
Itoh, Kazuhito
Terada, Tomoki P.
author_sort Sasai, Masaki
collection PubMed
description A remarkable feature of the self-renewing population of embryonic stem cells (ESCs) is their phenotypic heterogeneity: Nanog and other marker proteins of ESCs show large cell-to-cell variation in their expression level, which should significantly influence the differentiation process of individual cells. The molecular mechanism and biological implication of this heterogeneity, however, still remain elusive. We address this problem by constructing a model of the core gene-network of mouse ESCs. The model takes account of processes of binding/unbinding of transcription factors, formation/dissolution of transcription apparatus, and modification of histone code at each locus of genes in the network. These processes are hierarchically interrelated to each other forming the dynamical feedback loops. By simulating stochastic dynamics of this model, we show that the phenotypic heterogeneity of ESCs can be explained when the chromatin at the Nanog locus undergoes the large scale reorganization in formation/dissolution of transcription apparatus, which should have the timescale similar to the cell cycle period. With this slow transcriptional switching of Nanog, the simulated ESCs fluctuate among multiple transient states, which can trigger the differentiation into the lineage-specific cell states. From the simulated transitions among cell states, the epigenetic landscape underlying transitions is calculated. The slow Nanog switching gives rise to the wide basin of ESC states in the landscape. The bimodal Nanog distribution arising from the kinetic flow running through this ESC basin prevents transdifferentiation and promotes the definite decision of the cell fate. These results show that the distribution of timescales of the regulatory processes is decisively important to characterize the fluctuation of cells and their differentiation process. The analyses through the epigenetic landscape and the kinetic flow on the landscape should provide a guideline to engineer cell differentiation.
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spelling pubmed-38614422013-12-17 Time Scales in Epigenetic Dynamics and Phenotypic Heterogeneity of Embryonic Stem Cells Sasai, Masaki Kawabata, Yudai Makishi, Koh Itoh, Kazuhito Terada, Tomoki P. PLoS Comput Biol Research Article A remarkable feature of the self-renewing population of embryonic stem cells (ESCs) is their phenotypic heterogeneity: Nanog and other marker proteins of ESCs show large cell-to-cell variation in their expression level, which should significantly influence the differentiation process of individual cells. The molecular mechanism and biological implication of this heterogeneity, however, still remain elusive. We address this problem by constructing a model of the core gene-network of mouse ESCs. The model takes account of processes of binding/unbinding of transcription factors, formation/dissolution of transcription apparatus, and modification of histone code at each locus of genes in the network. These processes are hierarchically interrelated to each other forming the dynamical feedback loops. By simulating stochastic dynamics of this model, we show that the phenotypic heterogeneity of ESCs can be explained when the chromatin at the Nanog locus undergoes the large scale reorganization in formation/dissolution of transcription apparatus, which should have the timescale similar to the cell cycle period. With this slow transcriptional switching of Nanog, the simulated ESCs fluctuate among multiple transient states, which can trigger the differentiation into the lineage-specific cell states. From the simulated transitions among cell states, the epigenetic landscape underlying transitions is calculated. The slow Nanog switching gives rise to the wide basin of ESC states in the landscape. The bimodal Nanog distribution arising from the kinetic flow running through this ESC basin prevents transdifferentiation and promotes the definite decision of the cell fate. These results show that the distribution of timescales of the regulatory processes is decisively important to characterize the fluctuation of cells and their differentiation process. The analyses through the epigenetic landscape and the kinetic flow on the landscape should provide a guideline to engineer cell differentiation. Public Library of Science 2013-12-12 /pmc/articles/PMC3861442/ /pubmed/24348228 http://dx.doi.org/10.1371/journal.pcbi.1003380 Text en © 2013 Sasai et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Sasai, Masaki
Kawabata, Yudai
Makishi, Koh
Itoh, Kazuhito
Terada, Tomoki P.
Time Scales in Epigenetic Dynamics and Phenotypic Heterogeneity of Embryonic Stem Cells
title Time Scales in Epigenetic Dynamics and Phenotypic Heterogeneity of Embryonic Stem Cells
title_full Time Scales in Epigenetic Dynamics and Phenotypic Heterogeneity of Embryonic Stem Cells
title_fullStr Time Scales in Epigenetic Dynamics and Phenotypic Heterogeneity of Embryonic Stem Cells
title_full_unstemmed Time Scales in Epigenetic Dynamics and Phenotypic Heterogeneity of Embryonic Stem Cells
title_short Time Scales in Epigenetic Dynamics and Phenotypic Heterogeneity of Embryonic Stem Cells
title_sort time scales in epigenetic dynamics and phenotypic heterogeneity of embryonic stem cells
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3861442/
https://www.ncbi.nlm.nih.gov/pubmed/24348228
http://dx.doi.org/10.1371/journal.pcbi.1003380
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