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LncRNAs are regulated by chromatin states and affect the skeletal muscle cell differentiation

OBJECTIVE: This study aims to clarify the mechanisms underlying transcriptional regulation and regulatory roles of lncRNAs in skeletal muscle cell differentiation. METHODS: We analysed the expression patterns of lncRNAs via time‐course RNA‐seq. Then, we further combined the ATAC‐seq and ChIP‐seq to...

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Autores principales: Qi, Xiaolong, Hu, Mingyang, Xiang, Yue, Wang, Daoyuan, Xu, Yueyuan, Hou, Ye, Zhou, Huanhuan, Luan, Yu, Wang, Zhangxu, Zhang, Weiya, Li, Xinyun, Zhao, Shuhong, Zhao, Yunxia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7507427/
https://www.ncbi.nlm.nih.gov/pubmed/32770602
http://dx.doi.org/10.1111/cpr.12879
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author Qi, Xiaolong
Hu, Mingyang
Xiang, Yue
Wang, Daoyuan
Xu, Yueyuan
Hou, Ye
Zhou, Huanhuan
Luan, Yu
Wang, Zhangxu
Zhang, Weiya
Li, Xinyun
Zhao, Shuhong
Zhao, Yunxia
author_facet Qi, Xiaolong
Hu, Mingyang
Xiang, Yue
Wang, Daoyuan
Xu, Yueyuan
Hou, Ye
Zhou, Huanhuan
Luan, Yu
Wang, Zhangxu
Zhang, Weiya
Li, Xinyun
Zhao, Shuhong
Zhao, Yunxia
author_sort Qi, Xiaolong
collection PubMed
description OBJECTIVE: This study aims to clarify the mechanisms underlying transcriptional regulation and regulatory roles of lncRNAs in skeletal muscle cell differentiation. METHODS: We analysed the expression patterns of lncRNAs via time‐course RNA‐seq. Then, we further combined the ATAC‐seq and ChIP‐seq to investigate the governing mechanisms of transcriptional regulation of differentially expressed (DE) lncRNAs. Weighted correlation network analysis and GO analysis were conducted to identify the transcription factor (TF)‐lncRNA pairs related to skeletal muscle cell differentiation. RESULTS: We identified 385 DE lncRNAs during C2C12 differentiation, the transcription of which is determined by chromatin states around their transcriptional start sites. The TF‐lncRNA correlation network showed substantially concordant changes in DE lncRNAs between C2C12 differentiation and satellite cell rapid growth stages. Moreover, the up‐regulated lncRNAs showed a significant decrease following the differentiation capacity of satellite cells, which gradually declines during skeletal muscle development. Notably, inhibition of the lncRNA Atcayos and Trp53cor1 led to the delayed differentiation of satellite cells. Those lncRNAs were significantly up‐regulated during the rapid growth stage of satellite cells (4‐6 weeks) and down‐regulated with reduced differentiation capacity (8‐12 weeks). It confirms that these lncRNAs are positively associated with myogenic differentiation of satellite cells during skeletal muscle development. CONCLUSIONS: This study extends the understanding of mechanisms governing transcriptional regulation of lncRNAs and provides a foundation for exploring their functions in skeletal muscle cell differentiation.
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spelling pubmed-75074272020-09-28 LncRNAs are regulated by chromatin states and affect the skeletal muscle cell differentiation Qi, Xiaolong Hu, Mingyang Xiang, Yue Wang, Daoyuan Xu, Yueyuan Hou, Ye Zhou, Huanhuan Luan, Yu Wang, Zhangxu Zhang, Weiya Li, Xinyun Zhao, Shuhong Zhao, Yunxia Cell Prolif Original Articles OBJECTIVE: This study aims to clarify the mechanisms underlying transcriptional regulation and regulatory roles of lncRNAs in skeletal muscle cell differentiation. METHODS: We analysed the expression patterns of lncRNAs via time‐course RNA‐seq. Then, we further combined the ATAC‐seq and ChIP‐seq to investigate the governing mechanisms of transcriptional regulation of differentially expressed (DE) lncRNAs. Weighted correlation network analysis and GO analysis were conducted to identify the transcription factor (TF)‐lncRNA pairs related to skeletal muscle cell differentiation. RESULTS: We identified 385 DE lncRNAs during C2C12 differentiation, the transcription of which is determined by chromatin states around their transcriptional start sites. The TF‐lncRNA correlation network showed substantially concordant changes in DE lncRNAs between C2C12 differentiation and satellite cell rapid growth stages. Moreover, the up‐regulated lncRNAs showed a significant decrease following the differentiation capacity of satellite cells, which gradually declines during skeletal muscle development. Notably, inhibition of the lncRNA Atcayos and Trp53cor1 led to the delayed differentiation of satellite cells. Those lncRNAs were significantly up‐regulated during the rapid growth stage of satellite cells (4‐6 weeks) and down‐regulated with reduced differentiation capacity (8‐12 weeks). It confirms that these lncRNAs are positively associated with myogenic differentiation of satellite cells during skeletal muscle development. CONCLUSIONS: This study extends the understanding of mechanisms governing transcriptional regulation of lncRNAs and provides a foundation for exploring their functions in skeletal muscle cell differentiation. John Wiley and Sons Inc. 2020-08-07 /pmc/articles/PMC7507427/ /pubmed/32770602 http://dx.doi.org/10.1111/cpr.12879 Text en © 2020 The Authors. Cell Proliferation published by John Wiley & Sons Ltd This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Qi, Xiaolong
Hu, Mingyang
Xiang, Yue
Wang, Daoyuan
Xu, Yueyuan
Hou, Ye
Zhou, Huanhuan
Luan, Yu
Wang, Zhangxu
Zhang, Weiya
Li, Xinyun
Zhao, Shuhong
Zhao, Yunxia
LncRNAs are regulated by chromatin states and affect the skeletal muscle cell differentiation
title LncRNAs are regulated by chromatin states and affect the skeletal muscle cell differentiation
title_full LncRNAs are regulated by chromatin states and affect the skeletal muscle cell differentiation
title_fullStr LncRNAs are regulated by chromatin states and affect the skeletal muscle cell differentiation
title_full_unstemmed LncRNAs are regulated by chromatin states and affect the skeletal muscle cell differentiation
title_short LncRNAs are regulated by chromatin states and affect the skeletal muscle cell differentiation
title_sort lncrnas are regulated by chromatin states and affect the skeletal muscle cell differentiation
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7507427/
https://www.ncbi.nlm.nih.gov/pubmed/32770602
http://dx.doi.org/10.1111/cpr.12879
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