In silico study on the effects of disulfide bonds in ORF8 of SARS-CoV-2

被引:4
|
作者
Cheng, Yadi [1 ]
Peng, Xubiao [1 ,2 ]
机构
[1] Beijing Inst Technol, Sch Phys, Ctr Quantum Technol Res, Key Lab Adv Optoelect Quantum Architecture & Meas, Beijing 100081, Peoples R China
[2] Beijing Acad Quantum Informat Sci, Beijing 100193, Peoples R China
关键词
PROTEIN; ASSEMBLIES;
D O I
10.1039/d2cp01724e
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The COVID-19 epidemic, caused by virus SARS-CoV-2, has turned into a pandemic and threatened everyone's health for the past two years. In SARS-CoV-2, ORF8 is one of the most important accessory proteins with a role in immune modulation. There are multiple disulfide bonds in the wild type (WT) ORF8. Here, we present an in silico study on the effects of the disulfide bonds in ORF8 on the aspects of the structural properties and binding properties with the human leukocyte antigen (HLA-A). We first define five possible states for ORF8 with different disulfide bond reduction schemes. For each state, we collect the conformational ensemble using molecular dynamics (MD) simulations in an explicit solvent. From the analysis of the structural properties, we find that the reduction of the disulfide bonds has small effects on the global properties but much larger effects on the ORF8-specific region that is located on the surface of the ORF8 dimer. Interestingly, we find that the dimer does not break into two monomers at room temperature even if all the disulfide bonds get reduced. Further, we investigate the role of the disulfide bonds in the interactions with the human leukocyte antigen (HLA) by performing docking between HLA-A and the conformational ensembles of ORF8 in different states. We give predictions on the preferred binding sites for each state and validate the predictions for the WT dimer with the experimental data on epitopes. In the end, we evaluate the stability of the complexes formed between HLA-A and ORF8 in each state using MD simulations. Our observations can provide inspiration for inhibitor/drug design against ORF8 based on the binding pathway with HLA-A.
引用
收藏
页码:16876 / 16883
页数:8
相关论文
共 50 条
  • [41] Structural and functional effects of the L84S mutant in the SARS-COV-2 ORF8 dimer based on microsecond molecular dynamics study
    Islam, Shafiqul
    Parves, Md. Rimon
    Islam, Md. Jahirul
    Ali, Md Ackas
    Efaz, Faiyaz Md.
    Hossain, Md. Shahadat
    Ullah, M. Obayed
    Halim, Mohammad A. A.
    [J]. JOURNAL OF BIOMOLECULAR STRUCTURE & DYNAMICS, 2024, 42 (11): : 5770 - 5787
  • [42] Conjugation with 8-arm PEG and CRM197 enhances the immunogenicity of SARS-CoV-2 ORF8 protein
    Tang, Xiaozhao
    Yu, Weili
    Shen, Lijuan
    Qi, Jinming
    Hu, Tao
    [J]. INTERNATIONAL IMMUNOPHARMACOLOGY, 2022, 109
  • [43] Immunoinformatic analysis of structural and epitope variations in the spike and Orf8 proteins of SARS-CoV-2/B.1.1.7
    Hussain, Mushtaq
    Shabbir, Sanya
    Amanullah, Anusha
    Raza, Fozia
    Imdad, Muhammad J.
    Zahid, Sahar
    [J]. JOURNAL OF MEDICAL VIROLOGY, 2021, 93 (07) : 4461 - 4468
  • [44] ORF8 contributes to cytokine storm during SARS-CoV-2 infection by activating IL-17 pathway
    Lin, Xiaoyuan
    Fu, Beibei
    Yin, Songna
    Li, Zhifeng
    Liu, Huawen
    Zhang, Haiwei
    Xing, Na
    Wang, Yu
    Xue, Weiwei
    Xiong, Yan
    Zhang, Shanfu
    Zhao, Qingting
    Xu, Shiyao
    Zhang, Jing
    Wang, Peihui
    Nian, Weiqi
    Wang, Xingsheng
    Wu, Haibo
    [J]. ISCIENCE, 2021, 24 (04)
  • [45] The SARS-CoV-2 encoded ORF8 protein Stimulates Human Monocytes to Produce Pro-Inflammatory Cytokines
    Ruan, Gordon J.
    Wu, Xiaosheng
    Manske, Michelle K.
    Nowakowski, Kevin E.
    Abeykoon, Jithma P.
    Tang, Xingyi
    Yu, Yue
    Witter, Taylor L.
    Taupin, Vanessa
    Paludo, Jonas
    Ansell, Stephen M.
    Badley, Andrew D.
    Schellenberg, Matthew J.
    Witzig, Thomas E.
    [J]. JOURNAL OF IMMUNOLOGY, 2022, 208 (01):
  • [46] Author Correction: ORF8 and ORF3b antibodies are accurate serological markers of early and late SARS-CoV-2 infection
    Asmaa Hachim
    Niloufar Kavian
    Carolyn A. Cohen
    Alex W. H. Chin
    Daniel K. W. Chu
    Chris K. P. Mok
    Owen T. Y. Tsang
    Yiu Cheong Yeung
    Ranawaka A. P. M. Perera
    Leo L. M. Poon
    J. S. Malik Peiris
    Sophie A. Valkenburg
    [J]. Nature Immunology, 2020, 21 : 1302 - 1302
  • [47] A Putative long-range RNA-RNA interaction between ORF8 and Spike of SARS-CoV-2
    Omoru, Okiemute Beatrice
    Pereira, Filipe
    Janga, Sarath Chandra
    Manzourolajdad, Amirhossein
    [J]. PLOS ONE, 2022, 17 (09):
  • [48] Positive selection underlies repeated knockout of ORF8 in SARS-CoV-2 evolution (vol 15, 3207, 2024)
    Wagner, Cassia
    Kistler, Kathryn E.
    Perchetti, Garrett A.
    Baker, Noah
    Frisbie, Lauren A.
    Torres, Laura Marcela
    Aragona, Frank
    Yun, Cory
    Figgins, Marlin
    Greninger, Alexander L.
    Cox, Alex
    Oltean, Hanna N.
    Roychoudhury, Pavitra
    Bedford, Trevor
    [J]. NATURE COMMUNICATIONS, 2024, 15 (01)
  • [49] ORF8a as a viroporin in SARS-CoV-2 infection?
    Zandi, Milad
    [J]. CYTOKINE & GROWTH FACTOR REVIEWS, 2021, 61 : 1 - 1
  • [50] SARS-CoV-2-encoded ORF8 protein possesses complement inhibitory properties
    Kumar, Jitendra
    Dhyani, Saurabh
    Kumar, Prateek
    Sharma, Nishi Raj
    Ganguly, Surajit
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 2023, 299 (03)