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Structural and Biological Basis of Alphacoronavirus nsp1 Associated with Host Proliferation and Immune Evasion

Non-structural protein 1 (nsp1) is only characterized in alphacoronaviruses (α-CoVs) and betacoronaviruses (β-CoVs). There have been extensive researches on how the β-CoVs nsp1 regulates viral virulence by inhibiting host protein synthesis, but the regulatory mechanism of the α-CoVs nsp1 is still un...

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Autores principales: Shen, Zhou, Yang, Yiling, Yang, Siqi, Zhang, Guangxu, Xiao, Shaobo, Fu, Zhen F., Peng, Guiqing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7472224/
https://www.ncbi.nlm.nih.gov/pubmed/32731335
http://dx.doi.org/10.3390/v12080812
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author Shen, Zhou
Yang, Yiling
Yang, Siqi
Zhang, Guangxu
Xiao, Shaobo
Fu, Zhen F.
Peng, Guiqing
author_facet Shen, Zhou
Yang, Yiling
Yang, Siqi
Zhang, Guangxu
Xiao, Shaobo
Fu, Zhen F.
Peng, Guiqing
author_sort Shen, Zhou
collection PubMed
description Non-structural protein 1 (nsp1) is only characterized in alphacoronaviruses (α-CoVs) and betacoronaviruses (β-CoVs). There have been extensive researches on how the β-CoVs nsp1 regulates viral virulence by inhibiting host protein synthesis, but the regulatory mechanism of the α-CoVs nsp1 is still unclear. Here, we report the 2.1-Å full-length crystal structure of nsp1 in emerging porcine SADS-CoV and the 1.8-Å full-length crystal structure of nsp1 in the highly lethal cat FIPV. Although they belong to different subtypes of α-CoVs, these viruses all have a bucket-shaped fold composed of six β-sheets, similar to the crystal structure of PEDV and TGEV nsp1. Comparing the above four structures, we found that the structure of α-CoVs nsp1 in the same subtype was more conserved. We then selected mammalian cells that were treated with SADS-CoV and FIPV nsp1 for RNA sequencing analysis and found that nsp1 had a specific inhibitory effect on interferon (IFN) and cell cycle genes. Using the Renilla luciferase (Rluc) assay and Western blotting, we confirmed that seven representative α-CoVs nsp1s could significantly inhibit the phosphorylation of STAT1-S727 and interfere with the effect of IFN-I. Moreover, the cell cycle experiment confirmed that α-CoVs nsp1 could encourage host cells to stay in the G0/G1 phase. Based on these findings, we not only greatly improved the crystal structure data on α-CoVs nsp1, but we also speculated that α-CoVs nsp1 regulated host proliferation and immune evasion-related biological functions by inhibiting the synthesis of host proteins, thus creating an environment conducive to the virus.
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spelling pubmed-74722242020-09-04 Structural and Biological Basis of Alphacoronavirus nsp1 Associated with Host Proliferation and Immune Evasion Shen, Zhou Yang, Yiling Yang, Siqi Zhang, Guangxu Xiao, Shaobo Fu, Zhen F. Peng, Guiqing Viruses Article Non-structural protein 1 (nsp1) is only characterized in alphacoronaviruses (α-CoVs) and betacoronaviruses (β-CoVs). There have been extensive researches on how the β-CoVs nsp1 regulates viral virulence by inhibiting host protein synthesis, but the regulatory mechanism of the α-CoVs nsp1 is still unclear. Here, we report the 2.1-Å full-length crystal structure of nsp1 in emerging porcine SADS-CoV and the 1.8-Å full-length crystal structure of nsp1 in the highly lethal cat FIPV. Although they belong to different subtypes of α-CoVs, these viruses all have a bucket-shaped fold composed of six β-sheets, similar to the crystal structure of PEDV and TGEV nsp1. Comparing the above four structures, we found that the structure of α-CoVs nsp1 in the same subtype was more conserved. We then selected mammalian cells that were treated with SADS-CoV and FIPV nsp1 for RNA sequencing analysis and found that nsp1 had a specific inhibitory effect on interferon (IFN) and cell cycle genes. Using the Renilla luciferase (Rluc) assay and Western blotting, we confirmed that seven representative α-CoVs nsp1s could significantly inhibit the phosphorylation of STAT1-S727 and interfere with the effect of IFN-I. Moreover, the cell cycle experiment confirmed that α-CoVs nsp1 could encourage host cells to stay in the G0/G1 phase. Based on these findings, we not only greatly improved the crystal structure data on α-CoVs nsp1, but we also speculated that α-CoVs nsp1 regulated host proliferation and immune evasion-related biological functions by inhibiting the synthesis of host proteins, thus creating an environment conducive to the virus. MDPI 2020-07-28 /pmc/articles/PMC7472224/ /pubmed/32731335 http://dx.doi.org/10.3390/v12080812 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Shen, Zhou
Yang, Yiling
Yang, Siqi
Zhang, Guangxu
Xiao, Shaobo
Fu, Zhen F.
Peng, Guiqing
Structural and Biological Basis of Alphacoronavirus nsp1 Associated with Host Proliferation and Immune Evasion
title Structural and Biological Basis of Alphacoronavirus nsp1 Associated with Host Proliferation and Immune Evasion
title_full Structural and Biological Basis of Alphacoronavirus nsp1 Associated with Host Proliferation and Immune Evasion
title_fullStr Structural and Biological Basis of Alphacoronavirus nsp1 Associated with Host Proliferation and Immune Evasion
title_full_unstemmed Structural and Biological Basis of Alphacoronavirus nsp1 Associated with Host Proliferation and Immune Evasion
title_short Structural and Biological Basis of Alphacoronavirus nsp1 Associated with Host Proliferation and Immune Evasion
title_sort structural and biological basis of alphacoronavirus nsp1 associated with host proliferation and immune evasion
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7472224/
https://www.ncbi.nlm.nih.gov/pubmed/32731335
http://dx.doi.org/10.3390/v12080812
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