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Parvovirus B19 NS1 protein induces cell cycle arrest at G2-phase by activating the ATR-CDC25C-CDK1 pathway

Human parvovirus B19 (B19V) infection of primary human erythroid progenitor cells (EPCs) arrests infected cells at both late S-phase and G2-phase, which contain 4N DNA. B19V infection induces a DNA damage response (DDR) that facilitates viral DNA replication but is dispensable for cell cycle arrest...

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Autores principales: Xu, Peng, Zhou, Zhe, Xiong, Min, Zou, Wei, Deng, Xuefeng, Ganaie, Safder S., Kleiboeker, Steve, Peng, Jianxin, Liu, Kaiyu, Wang, Shengqi, Ye, Shui Qing, Qiu, Jianming
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5354443/
https://www.ncbi.nlm.nih.gov/pubmed/28264028
http://dx.doi.org/10.1371/journal.ppat.1006266
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author Xu, Peng
Zhou, Zhe
Xiong, Min
Zou, Wei
Deng, Xuefeng
Ganaie, Safder S.
Kleiboeker, Steve
Peng, Jianxin
Liu, Kaiyu
Wang, Shengqi
Ye, Shui Qing
Qiu, Jianming
author_facet Xu, Peng
Zhou, Zhe
Xiong, Min
Zou, Wei
Deng, Xuefeng
Ganaie, Safder S.
Kleiboeker, Steve
Peng, Jianxin
Liu, Kaiyu
Wang, Shengqi
Ye, Shui Qing
Qiu, Jianming
author_sort Xu, Peng
collection PubMed
description Human parvovirus B19 (B19V) infection of primary human erythroid progenitor cells (EPCs) arrests infected cells at both late S-phase and G2-phase, which contain 4N DNA. B19V infection induces a DNA damage response (DDR) that facilitates viral DNA replication but is dispensable for cell cycle arrest at G2-phase; however, a putative C-terminal transactivation domain (TAD2) within NS1 is responsible for G2-phase arrest. To fully understand the mechanism underlying B19V NS1-induced G2-phase arrest, we established two doxycycline-inducible B19V-permissive UT7/Epo-S1 cell lines that express NS1 or NS1(mTAD2), and examined the function of the TAD2 domain during G2-phase arrest. The results confirm that the NS1 TAD2 domain plays a pivotal role in NS1-induced G2-phase arrest. Mechanistically, NS1 transactivated cellular gene expression through the TAD2 domain, which was itself responsible for ATR (ataxia-telangiectasia mutated and Rad3-related) activation. Activated ATR phosphorylated CDC25C at serine 216, which in turn inactivated the cyclin B/CDK1 complex without affecting nuclear import of the complex. Importantly, we found that the ATR-CHK1-CDC25C-CDK1 pathway was activated during B19V infection of EPCs, and that ATR activation played an important role in B19V infection-induced G2-phase arrest.
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spelling pubmed-53544432017-04-06 Parvovirus B19 NS1 protein induces cell cycle arrest at G2-phase by activating the ATR-CDC25C-CDK1 pathway Xu, Peng Zhou, Zhe Xiong, Min Zou, Wei Deng, Xuefeng Ganaie, Safder S. Kleiboeker, Steve Peng, Jianxin Liu, Kaiyu Wang, Shengqi Ye, Shui Qing Qiu, Jianming PLoS Pathog Research Article Human parvovirus B19 (B19V) infection of primary human erythroid progenitor cells (EPCs) arrests infected cells at both late S-phase and G2-phase, which contain 4N DNA. B19V infection induces a DNA damage response (DDR) that facilitates viral DNA replication but is dispensable for cell cycle arrest at G2-phase; however, a putative C-terminal transactivation domain (TAD2) within NS1 is responsible for G2-phase arrest. To fully understand the mechanism underlying B19V NS1-induced G2-phase arrest, we established two doxycycline-inducible B19V-permissive UT7/Epo-S1 cell lines that express NS1 or NS1(mTAD2), and examined the function of the TAD2 domain during G2-phase arrest. The results confirm that the NS1 TAD2 domain plays a pivotal role in NS1-induced G2-phase arrest. Mechanistically, NS1 transactivated cellular gene expression through the TAD2 domain, which was itself responsible for ATR (ataxia-telangiectasia mutated and Rad3-related) activation. Activated ATR phosphorylated CDC25C at serine 216, which in turn inactivated the cyclin B/CDK1 complex without affecting nuclear import of the complex. Importantly, we found that the ATR-CHK1-CDC25C-CDK1 pathway was activated during B19V infection of EPCs, and that ATR activation played an important role in B19V infection-induced G2-phase arrest. Public Library of Science 2017-03-06 /pmc/articles/PMC5354443/ /pubmed/28264028 http://dx.doi.org/10.1371/journal.ppat.1006266 Text en © 2017 Xu 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Xu, Peng
Zhou, Zhe
Xiong, Min
Zou, Wei
Deng, Xuefeng
Ganaie, Safder S.
Kleiboeker, Steve
Peng, Jianxin
Liu, Kaiyu
Wang, Shengqi
Ye, Shui Qing
Qiu, Jianming
Parvovirus B19 NS1 protein induces cell cycle arrest at G2-phase by activating the ATR-CDC25C-CDK1 pathway
title Parvovirus B19 NS1 protein induces cell cycle arrest at G2-phase by activating the ATR-CDC25C-CDK1 pathway
title_full Parvovirus B19 NS1 protein induces cell cycle arrest at G2-phase by activating the ATR-CDC25C-CDK1 pathway
title_fullStr Parvovirus B19 NS1 protein induces cell cycle arrest at G2-phase by activating the ATR-CDC25C-CDK1 pathway
title_full_unstemmed Parvovirus B19 NS1 protein induces cell cycle arrest at G2-phase by activating the ATR-CDC25C-CDK1 pathway
title_short Parvovirus B19 NS1 protein induces cell cycle arrest at G2-phase by activating the ATR-CDC25C-CDK1 pathway
title_sort parvovirus b19 ns1 protein induces cell cycle arrest at g2-phase by activating the atr-cdc25c-cdk1 pathway
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5354443/
https://www.ncbi.nlm.nih.gov/pubmed/28264028
http://dx.doi.org/10.1371/journal.ppat.1006266
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