Molecular biological analysis of genotyping and phylogeny of severe acute respiratory syndrome associated coronavirus

被引:0
|
作者
王志刚
李兰娟
罗芸
张俊彦
王敏雅
程苏云
张严峻
王晓萌
卢亦愚
吴南屏
梅玲玲
王赞信
机构
[1] Zhejiang Provincial Center for Disease Prevention and Control
[2] Zhejiang Taizhou Luqiao Center for Disease Prevention and Control
[3] Zhejiang Provincial Center for Disease Prevention and Control Hangzhou
[4] China
[5] Hangzhou
[6] Taizhou
[7] Hangzhou
关键词
D O I
暂无
中图分类号
R346 [];
学科分类号
摘要
Background SARS-CoV is the causative agent of severe acute respiratory syndrome (SARS) which has been associated with outbreaks of SARS in Guangdong,Hong Kong and Beijing of China,and other regions worldwide. SARS-CoV from human has shown some variations but its origin is still unknown. The genotyping and phylogeny of SARS-CoV were analyzed and reported in this paper. Methods Full or partial genomes of 44 SARS-CoV strains were collected from GenBank. The genotype,single nucleotide polymorphism and phylogeny of these SARS-CoV strains were analyzed by molecular biological,bioinformatic and epidemiological methods. Results There were 188 point mutations in the 33 virus full genomes with the counts of mutation mounting to 297. Further analysis was carried out among 36 of 188 loci with more than two times of mutation. All the 36 mutation loci occurred in coding sequences and 22 loci were non-synonymous. The gene mutation rates of replicase 1AB,S2 domain of spike glycoprotein and nucleocapsid protein were lower (0.079%-0.103%). There were 4 mutation loci in S1 domain of spike glycoprotein. The gene mutation rate of ORF10 was the highest (3.333%) with 4 mutation loci in this small domain (120 bp) and 3 of 4 loci related to deletion mutation. By bioinformatics processing and analysis,the nucleotides at 7 loci of genome (T∶T∶A∶G∶T∶C∶T/C∶G∶G∶A∶C∶T∶C) can classify SARS-CoV into two types. Therefore a novel definition is put forward that according to these 7 loci of mutation,40 strains of SARS-CoV in GenBank can be grouped into two genotypes,T∶T∶A∶G∶T∶C∶T and C∶G∶ G∶A∶ C∶T∶C,and named as SARS-CoV Yexin genotype and Xiaohong genotype. The two genotypes can be further divided into some sub-genotypes. These genotypes can also be approved by phylogenetic tree of three levels of 44 loci of mutation, spike glycoprotein gene and complete genome sequence. Compared to various strains among SARS-CoV Yexin genotype and Xiaohong genotype,GD01 strain of Yexin genotype is more closely related to SARS-CoV like-virus from animals. Conclusion The results mentioned above suggest that SARS-CoV is responding to host immunological pressures and experiencing variation which provide clues,information and evidence of molecular biology for the clinical pathology,vaccine developing and epidemic investigation.
引用
收藏
页数:7
相关论文
共 50 条
  • [41] Diffuse Alveolar Hemorrhage Associated With Severe Acute Respiratory Syndrome Coronavirus 2
    Wali, Haytham A.
    Tabb, Deanne
    Baloch, Saeed A.
    CUREUS JOURNAL OF MEDICAL SCIENCE, 2021, 13 (12)
  • [42] Pulmonary pathological features in coronavirus associated severe acute respiratory syndrome (SARS)
    Tse, GMK
    To, KF
    Chan, PKS
    Lo, AWI
    Ng, KC
    Wu, A
    Lee, N
    Wong, HC
    Mak, SM
    Chan, KF
    Hui, DSC
    Sung, JJY
    Ng, HK
    JOURNAL OF CLINICAL PATHOLOGY, 2004, 57 (03) : 260 - 265
  • [43] Severe acute respiratory syndrome-associated coronavirus genotype and its characterization
    Li, LJ
    Wang, ZG
    Lu, YY
    Bao, QY
    Chen, SH
    Wu, NP
    Cheng, SY
    Weng, JQ
    Zhang, YJ
    Yan, JY
    Mei, LL
    Wang, XM
    Zhu, HP
    Yu, YP
    Zhang, ML
    Li, MH
    Yao, J
    Lu, QY
    Yao, PP
    Bo, XC
    Wo, JN
    Wang, SQ
    Hu, SN
    CHINESE MEDICAL JOURNAL, 2003, 116 (09) : 1288 - 1292
  • [44] Possibilities to inhibit the replication of a severe acute respiratory syndrome (SARS) associated coronavirus
    Schmidtke, M
    Meier, C
    Schacke, M
    Helbig, B
    Makarov, V
    Wutzler, P
    ANTIVIRAL RESEARCH, 2004, 62 (02) : A76 - A77
  • [45] Multiple enzymatic activities associated with Severe acute respiratory syndrome coronavirus helicase
    Ivanov, KA
    Thiel, V
    Dobbe, JC
    van der Meer, Y
    Snijder, EJ
    Ziebuhr, J
    JOURNAL OF VIROLOGY, 2004, 78 (11) : 5619 - 5632
  • [46] Interaction of severe acute respiratory syndrome-associated coronavirus with dendritic cells
    Spiegel, Martin
    Schneider, Kerstin
    Weber, Friedemann
    Weidmann, Manfred
    Hufert, Frank T.
    JOURNAL OF GENERAL VIROLOGY, 2006, 87 : 1953 - 1960
  • [47] Molecular and biological characterization of human monoclonal antibodies binding to the spike and nucleocapsid proteins of severe acute respiratory syndrome coronavirus
    van den Brink, EN
    ter Meulen, J
    Cox, F
    Jongeneelen, MAC
    Thijsse, A
    Throsby, M
    Marissen, WE
    Rood, PML
    Bakker, ABH
    Gelderblom, HR
    Martina, BE
    Osterhaus, ADME
    Preiser, W
    Doerr, HW
    de Kruif, J
    Goudsmit, J
    JOURNAL OF VIROLOGY, 2005, 79 (03) : 1635 - 1644
  • [48] A Case of Acute Pancreatitis Associated With the Novel Severe Acute Respiratory Syndrome Coronavirus-2
    Samad, Sara
    St Cyr, Nikolas
    Basit, Abdul
    Sinha, Neera
    Abdullah, Muhammad
    AMERICAN JOURNAL OF GASTROENTEROLOGY, 2020, 115 : S807 - S808
  • [49] Coronavirus pathogenesis and the emerging pathogen severe acute respiratory syndrome coronavirus
    Weiss, SR
    Navas-Martin, S
    MICROBIOLOGY AND MOLECULAR BIOLOGY REVIEWS, 2005, 69 (04) : 635 - +
  • [50] Human Coronavirus EMC Is Not the Same as Severe Acute Respiratory Syndrome Coronavirus
    Perlman, Stanley
    Zhao, Jincun
    MBIO, 2013, 4 (01):