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N(6)-methyladenine in DNA antagonizes SATB1 in early development

The recent discovery of N(6)-mA in mammalian genomes suggests that it may serve as an epigenetic regulatory mechanism(1). However, the biological role of N(6)-mA and molecular pathways exerting its function remain elusive. Herein, we demonstrate that N(6)-mA plays a critical role in changing the epi...

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Autores principales: Li, Zheng, Zhao, Shuai, Nelakanti, Raman V., Lin, Kaixuan, Wu, Tao P., Alderman, Myles H., Guo, Cheng, Wang, Pengcheng, Zhang, Min, Min, Wang, Jiang, Zongliang, Wang, Yinsheng, Li, Haitao, Xiao, Andrew Z.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8596487/
https://www.ncbi.nlm.nih.gov/pubmed/32669713
http://dx.doi.org/10.1038/s41586-020-2500-9
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author Li, Zheng
Zhao, Shuai
Nelakanti, Raman V.
Lin, Kaixuan
Wu, Tao P.
Alderman, Myles H.
Guo, Cheng
Wang, Pengcheng
Zhang, Min
Min, Wang
Jiang, Zongliang
Wang, Yinsheng
Li, Haitao
Xiao, Andrew Z.
author_facet Li, Zheng
Zhao, Shuai
Nelakanti, Raman V.
Lin, Kaixuan
Wu, Tao P.
Alderman, Myles H.
Guo, Cheng
Wang, Pengcheng
Zhang, Min
Min, Wang
Jiang, Zongliang
Wang, Yinsheng
Li, Haitao
Xiao, Andrew Z.
author_sort Li, Zheng
collection PubMed
description The recent discovery of N(6)-mA in mammalian genomes suggests that it may serve as an epigenetic regulatory mechanism(1). However, the biological role of N(6)-mA and molecular pathways exerting its function remain elusive. Herein, we demonstrate that N(6)-mA plays a critical role in changing the epigenetic landscape during cell fate transitions in early development. We found that N(6)-mA is upregulated during trophoblast stem cell development, specifically at Stress Induced DNA Double Helix Destabilization (SIDD) regions(2-4). It is well-known that SIDD regions are conducive to topological stress-induced double helix unpairing and play critical roles in organizing large-scale chromatin structures(3,5,6). We demonstrated that the presence of N(6)-mA abolishes (>500-fold) the in vitro interactions between SIDD and SATB1, a critical chromatin organizer interacting with SIDD regions; N(6)-mA deposition also effectively antagonizes SATB1 function in vivo by preventing its binding to chromatin. Concordantly, N(6)-mA functions at the boundaries between eu-/hetero- chromatin to restrict the spreading of euchromatin. N(6)-mA mediated repression is critical for gene regulation during trophoblast development in cell culture models and in vivo. Overall, our study discovers an unexpected molecular mechanism for N(6)-mA function via SATB1, and reveals surprising connections between DNA modification, DNA secondary structures and large chromatin domains in early embryonic development.
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spelling pubmed-85964872021-11-17 N(6)-methyladenine in DNA antagonizes SATB1 in early development Li, Zheng Zhao, Shuai Nelakanti, Raman V. Lin, Kaixuan Wu, Tao P. Alderman, Myles H. Guo, Cheng Wang, Pengcheng Zhang, Min Min, Wang Jiang, Zongliang Wang, Yinsheng Li, Haitao Xiao, Andrew Z. Nature Article The recent discovery of N(6)-mA in mammalian genomes suggests that it may serve as an epigenetic regulatory mechanism(1). However, the biological role of N(6)-mA and molecular pathways exerting its function remain elusive. Herein, we demonstrate that N(6)-mA plays a critical role in changing the epigenetic landscape during cell fate transitions in early development. We found that N(6)-mA is upregulated during trophoblast stem cell development, specifically at Stress Induced DNA Double Helix Destabilization (SIDD) regions(2-4). It is well-known that SIDD regions are conducive to topological stress-induced double helix unpairing and play critical roles in organizing large-scale chromatin structures(3,5,6). We demonstrated that the presence of N(6)-mA abolishes (>500-fold) the in vitro interactions between SIDD and SATB1, a critical chromatin organizer interacting with SIDD regions; N(6)-mA deposition also effectively antagonizes SATB1 function in vivo by preventing its binding to chromatin. Concordantly, N(6)-mA functions at the boundaries between eu-/hetero- chromatin to restrict the spreading of euchromatin. N(6)-mA mediated repression is critical for gene regulation during trophoblast development in cell culture models and in vivo. Overall, our study discovers an unexpected molecular mechanism for N(6)-mA function via SATB1, and reveals surprising connections between DNA modification, DNA secondary structures and large chromatin domains in early embryonic development. 2020-07-15 2020-07 /pmc/articles/PMC8596487/ /pubmed/32669713 http://dx.doi.org/10.1038/s41586-020-2500-9 Text en Reprints and permissions information is available at www.nature.com/reprints. Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Li, Zheng
Zhao, Shuai
Nelakanti, Raman V.
Lin, Kaixuan
Wu, Tao P.
Alderman, Myles H.
Guo, Cheng
Wang, Pengcheng
Zhang, Min
Min, Wang
Jiang, Zongliang
Wang, Yinsheng
Li, Haitao
Xiao, Andrew Z.
N(6)-methyladenine in DNA antagonizes SATB1 in early development
title N(6)-methyladenine in DNA antagonizes SATB1 in early development
title_full N(6)-methyladenine in DNA antagonizes SATB1 in early development
title_fullStr N(6)-methyladenine in DNA antagonizes SATB1 in early development
title_full_unstemmed N(6)-methyladenine in DNA antagonizes SATB1 in early development
title_short N(6)-methyladenine in DNA antagonizes SATB1 in early development
title_sort n(6)-methyladenine in dna antagonizes satb1 in early development
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8596487/
https://www.ncbi.nlm.nih.gov/pubmed/32669713
http://dx.doi.org/10.1038/s41586-020-2500-9
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