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PMID: 14760722 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Proteomic analysis on structural proteins of Severe Acute Respiratory Syndrome coronavirus.

Proteomics ·Vol. 4 ·No. 2 ·2004-02-00 ·Pages 492-504

Ying W, Hao Y, Zhang Y, Peng W, Qin E, Cai Y, Wei K, Wang J, Chang G, Sun W, Dai S, Li X, Zhu Y, Li J, Wu S, Guo L, Dai J, Wang J, Wan P, Chen T, Du C, Li D, Wan J, Kuai X, Li W, Shi R, Wei H, Cao C, Yu M, Liu H, Dong F, Wang D, Zhang X, Qian X, Zhu Q, He F

Abstract

Recently, a new coronavirus was isolated from the lung tissue of autopsy sample and nasal/throat swabs of the patients with Severe Acute Respiratory Syndrome (SARS) and the causative association with SARS was determined. To reveal further the characteristics of the virus and to provide insight about the molecular mechanism of SARS etiology, a proteomic strategy was utilized to identify the structural proteins of SARS coronavirus (SARS-CoV) isolated from Vero E6 cells infected with the BJ-01 strain of the virus. At first, Western blotting with the convalescent sera from SARS patients demonstrated that there were various structural proteins of SARS-CoV in the cultured supernatant of virus infected-Vero E6 cells and that nucleocaspid (N) protein had a prominent immunogenicity to the convalescent sera from the patients with SARS, while the immune response of spike (S) protein probably binding with membrane (M) glycoprotein was much weaker. Then, sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE) was used to separate the complex protein constituents, and the strategy of continuous slicing from loading well to the bottom of the gels was utilized to search thoroughly the structural proteins of the virus. The proteins in sliced slots were trypsinized in-gel and identified by mass spectrometry. Three structural proteins named S, N and M proteins of SARS-CoV were uncovered with the sequence coverage of 38.9, 93.1 and 28.1% respectively. Glycosylation modification in S protein was also analyzed and four glycosylation sites were discovered by comparing the mass spectra before and after deglycosylation of the peptides with PNGase F digestion. Matrix-assisted laser desorption/ionization-mass spectrometry determination showed that relative molecular weight of intact N protein is 45 929 Da, which is very close to its theoretically calculated molecular weight 45 935 Da based on the amino acid sequence deduced from the genome with the first amino acid methionine at the N-terminus depleted and second, serine, acetylated, indicating that phosphorylation does not happen at all in the predicted phosphorylation sites within infected cells nor in virus particles. Intriguingly, a series of shorter isoforms of N protein was observed by SDS-PAGE and identified by mass spectrometry characterization. For further confirmation of this phenomenon and its related mechanism, recombinant N protein of SARS-CoV was cleaved in vitro by caspase-3 and -6 respectively. The results demonstrated that these shorter isoforms could be the products from cleavage of caspase-3 rather than that of caspase-6. Further, the relationship between the caspase cleavage and the viral infection to the host cell is discussed.

MeSH Terms
Amino Acid Sequence Animals Caspase 3 Caspase 6 Caspases/metabolism Chlorocebus aethiops Coronavirus/metabolism Glycosylation Humans Lung/virology Molecular Sequence Data Nucleocapsid Proteins/metabolism SARS Virus/metabolism Severe Acute Respiratory Syndrome/virology Vero Cells Viral Envelope Proteins/metabolism Viral Proteins/metabolism
Chemicals
Nucleocapsid Proteins Viral Envelope Proteins Viral Proteins CASP3 protein, human CASP6 protein, human Caspase 3 Caspase 6 Caspases
Authors & Affiliations
36 authors, click to expand affiliations / ORCID
Ying Wantao
Beijing Institute of Radiation Medicine, Beijing, China.
Hao Yunwei
Zhang Yangjun
Peng Wenming
Qin Ede
Cai Yun
Wei Kaihua
Wang Jie
Chang Guohui
Sun Wei
Dai Shujia
Li Xiaohai
Zhu Yunping
Li Jianqi
Wu Songfeng
Guo Lihai
Dai Jingquan
Wang Jinglan
Wan Ping
Chen Tinggui
Du Chunjuan
Li Dong
Wan Jia
Kuai Xuezhang
Li Weihua
Shi Rong
Wei Handong
Cao Cheng
Yu Man
Liu Hong
Dong Fangting
Wang Donggen
Zhang Xuemin
Qian Xiaohong
Zhu Qingyu
He Fuchu
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Article Info
Journal
Proteomics
Abbr.
Proteomics
ISSN
1615-9853
Published
2004-02-00
Pages
492-504
Language
English
Region
Germany
NLM ID
101092707
PMCID
PMC7168022
Subset
IM
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