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RNA Editome in Rhesus Macaque Shaped by Purifying Selection

Understanding of the RNA editing process has been broadened considerably by the next generation sequencing technology; however, several issues regarding this regulatory step remain unresolved – the strategies to accurately delineate the editome, the mechanism by which its profile is maintained, and...

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Autores principales: Chen, Jia-Yu, Peng, Zhiyu, Zhang, Rongli, Yang, Xin-Zhuang, Tan, Bertrand Chin-Ming, Fang, Huaying, Liu, Chu-Jun, Shi, Mingming, Ye, Zhi-Qiang, Zhang, Yong E., Deng, Minghua, Zhang, Xiuqin, Li, Chuan-Yun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3983040/
https://www.ncbi.nlm.nih.gov/pubmed/24722121
http://dx.doi.org/10.1371/journal.pgen.1004274
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author Chen, Jia-Yu
Peng, Zhiyu
Zhang, Rongli
Yang, Xin-Zhuang
Tan, Bertrand Chin-Ming
Fang, Huaying
Liu, Chu-Jun
Shi, Mingming
Ye, Zhi-Qiang
Zhang, Yong E.
Deng, Minghua
Zhang, Xiuqin
Li, Chuan-Yun
author_facet Chen, Jia-Yu
Peng, Zhiyu
Zhang, Rongli
Yang, Xin-Zhuang
Tan, Bertrand Chin-Ming
Fang, Huaying
Liu, Chu-Jun
Shi, Mingming
Ye, Zhi-Qiang
Zhang, Yong E.
Deng, Minghua
Zhang, Xiuqin
Li, Chuan-Yun
author_sort Chen, Jia-Yu
collection PubMed
description Understanding of the RNA editing process has been broadened considerably by the next generation sequencing technology; however, several issues regarding this regulatory step remain unresolved – the strategies to accurately delineate the editome, the mechanism by which its profile is maintained, and its evolutionary and functional relevance. Here we report an accurate and quantitative profile of the RNA editome for rhesus macaque, a close relative of human. By combining genome and transcriptome sequencing of multiple tissues from the same animal, we identified 31,250 editing sites, of which 99.8% are A-to-G transitions. We verified 96.6% of editing sites in coding regions and 97.5% of randomly selected sites in non-coding regions, as well as the corresponding levels of editing by multiple independent means, demonstrating the feasibility of our experimental paradigm. Several lines of evidence supported the notion that the adenosine deamination is associated with the macaque editome – A-to-G editing sites were flanked by sequences with the attributes of ADAR substrates, and both the sequence context and the expression profile of ADARs are relevant factors in determining the quantitative variance of RNA editing across different sites and tissue types. In support of the functional relevance of some of these editing sites, substitution valley of decreased divergence was detected around the editing site, suggesting the evolutionary constraint in maintaining some of these editing substrates with their double-stranded structure. These findings thus complement the “continuous probing” model that postulates tinkering-based origination of a small proportion of functional editing sites. In conclusion, the macaque editome reported here highlights RNA editing as a widespread functional regulation in primate evolution, and provides an informative framework for further understanding RNA editing in human.
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spelling pubmed-39830402014-04-15 RNA Editome in Rhesus Macaque Shaped by Purifying Selection Chen, Jia-Yu Peng, Zhiyu Zhang, Rongli Yang, Xin-Zhuang Tan, Bertrand Chin-Ming Fang, Huaying Liu, Chu-Jun Shi, Mingming Ye, Zhi-Qiang Zhang, Yong E. Deng, Minghua Zhang, Xiuqin Li, Chuan-Yun PLoS Genet Research Article Understanding of the RNA editing process has been broadened considerably by the next generation sequencing technology; however, several issues regarding this regulatory step remain unresolved – the strategies to accurately delineate the editome, the mechanism by which its profile is maintained, and its evolutionary and functional relevance. Here we report an accurate and quantitative profile of the RNA editome for rhesus macaque, a close relative of human. By combining genome and transcriptome sequencing of multiple tissues from the same animal, we identified 31,250 editing sites, of which 99.8% are A-to-G transitions. We verified 96.6% of editing sites in coding regions and 97.5% of randomly selected sites in non-coding regions, as well as the corresponding levels of editing by multiple independent means, demonstrating the feasibility of our experimental paradigm. Several lines of evidence supported the notion that the adenosine deamination is associated with the macaque editome – A-to-G editing sites were flanked by sequences with the attributes of ADAR substrates, and both the sequence context and the expression profile of ADARs are relevant factors in determining the quantitative variance of RNA editing across different sites and tissue types. In support of the functional relevance of some of these editing sites, substitution valley of decreased divergence was detected around the editing site, suggesting the evolutionary constraint in maintaining some of these editing substrates with their double-stranded structure. These findings thus complement the “continuous probing” model that postulates tinkering-based origination of a small proportion of functional editing sites. In conclusion, the macaque editome reported here highlights RNA editing as a widespread functional regulation in primate evolution, and provides an informative framework for further understanding RNA editing in human. Public Library of Science 2014-04-10 /pmc/articles/PMC3983040/ /pubmed/24722121 http://dx.doi.org/10.1371/journal.pgen.1004274 Text en © 2014 Chen 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
Chen, Jia-Yu
Peng, Zhiyu
Zhang, Rongli
Yang, Xin-Zhuang
Tan, Bertrand Chin-Ming
Fang, Huaying
Liu, Chu-Jun
Shi, Mingming
Ye, Zhi-Qiang
Zhang, Yong E.
Deng, Minghua
Zhang, Xiuqin
Li, Chuan-Yun
RNA Editome in Rhesus Macaque Shaped by Purifying Selection
title RNA Editome in Rhesus Macaque Shaped by Purifying Selection
title_full RNA Editome in Rhesus Macaque Shaped by Purifying Selection
title_fullStr RNA Editome in Rhesus Macaque Shaped by Purifying Selection
title_full_unstemmed RNA Editome in Rhesus Macaque Shaped by Purifying Selection
title_short RNA Editome in Rhesus Macaque Shaped by Purifying Selection
title_sort rna editome in rhesus macaque shaped by purifying selection
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3983040/
https://www.ncbi.nlm.nih.gov/pubmed/24722121
http://dx.doi.org/10.1371/journal.pgen.1004274
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