设计针对人类巨细胞病毒的多表位疫苗,整合泛基因组和反向疫苗学流水线

IF 1.5 4区 生物学 Q4 BIOCHEMICAL RESEARCH METHODS
Rhitam Biswas , Rayapadi G. Swetha , Soumya Basu , Aditi Roy , Sudha Ramaiah , Anand Anbarasu
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引用次数: 0

摘要

人类巨细胞病毒(HCMV)是造成新生儿和免疫抑制人群高发病率的原因之一。由于 HCMV 的遗传变异性很高,目前的预防措施并不充分。在这项研究中,我们采用了泛基因组和反向疫苗学方法来筛选高效候选疫苗。根据细胞定位、高溶解性、抗原性和免疫原性,我们筛选出了包膜糖蛋白 M、UL41A、US23 和 US28 这四种蛋白。利用免疫信息学工具和算法,最终确定了 29 个 B 细胞和 44 个 T 细胞高免疫原性表位和全球高群体覆盖率表位。此外,还将最终确定的 B 细胞和 T 细胞表位中重叠的表位与合适的连接体连接起来,形成各种组合的多表位疫苗构建体。根据理化和结构特性,在 16 种疫苗构建体中选择了 Vc12。对 VC12 进行了对接和分子模拟,结果表明,由于分子间氢键、盐桥和疏水相互作用,VC12 与 TLR4 的结合亲和力很高(-23.35 kcal/mol),且波动很小。此外,通过硅克隆和密码子优化,Vc12 在大肠杆菌中的表达也得到了检验,表明它是一种有效的候选疫苗。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Designing multi-epitope vaccine against human cytomegalovirus integrating pan-genome and reverse vaccinology pipelines

Human cytomegalovirus (HCMV) is accountable for high morbidity in neonates and immunosuppressed individuals. Due to the high genetic variability of HCMV, current prophylactic measures are insufficient. In this study, we employed a pan-genome and reverse vaccinology approach to screen the target for efficient vaccine candidates. Four proteins, envelope glycoprotein M, UL41A, US23, and US28, were shortlisted based on cellular localization, high solubility, antigenicity, and immunogenicity. A total of 29 B-cell and 44 T-cell highly immunogenic and antigenic epitopes with high global population coverage were finalized using immunoinformatics tools and algorithms. Further, the epitopes that were overlapping among the finalized B-cell and T-cell epitopes were linked with suitable linkers to form various combinations of multi-epitopic vaccine constructs. Among 16 vaccine constructs, Vc12 was selected based on physicochemical and structural properties. The docking and molecular simulations of VC12 were performed, which showed its high binding affinity (−23.35 kcal/mol) towards TLR4 due to intermolecular hydrogen bonds, salt bridges, and hydrophobic interactions, and there were only minimal fluctuations. Furthermore, Vc12 eliciting a good response was checked for its expression in Escherichia coli through in silico cloning and codon optimization, suggesting it to be a potent vaccine candidate.

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来源期刊
Biologicals
Biologicals 生物-生化研究方法
CiteScore
3.70
自引率
0.00%
发文量
39
审稿时长
48 days
期刊介绍: Biologicals provides a modern and multidisciplinary international forum for news, debate, and original research on all aspects of biologicals used in human and veterinary medicine. The journal publishes original papers, reviews, and letters relevant to the development, production, quality control, and standardization of biological derived from both novel and established biotechnologies. Special issues are produced to reflect topics of particular international interest and concern.Three types of papers are welcome: original research reports, short papers, and review articles. The journal will also publish comments and letters to the editor, book reviews, meeting reports and information on regulatory issues.
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