诺如病毒多表位疫苗的集成芯片设计和体内验证。

IF 4 3区 医学 Q2 VIROLOGY
Jingxuan Qiu, Yiwen Wei, Jiayi Shu, Wenjing Zheng, Yuxi Zhang, Junting Xie, Dong Zhang, Xiaochuan Luo, Xiulan Sun, Xin Wang, Sijie Wang, Xuanyi Wang, Tianyi Qiu
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引用次数: 0

摘要

背景:诺如病毒(NoVs)是引起急性胃肠炎的食源性病原体。其主要抗原蛋白的多样性对疫苗开发和预防全球大规模疫情构成重大挑战。目前,还没有诺如病毒疫苗获得批准。方法:我们开发了一个新的管道,整合了多种生物信息学工具来设计针对NoVs的广谱疫苗。其中,基于共识序列和优化的表位筛选设计了广谱t细胞表位疫苗,而利用高通量抗原性计算和表位定位构建了广谱b细胞空间表位疫苗。结果:该管道在三个层面上进行了严格的验证:首先,在硅验证:性能和结构分析表明氨基酸组成的适当性和疫苗序列的结构完整性。其次,理论评估:人类白细胞抗原(HLA)亚型和抗原性覆盖的评估表明,设计的疫苗免疫原具有广泛的理论保护谱。此外,计算机模拟证实了它们引发免疫反应的能力。最后,动物水平的验证:小鼠实验表明,两种疫苗免疫原都能刺激高水平的IgG和IgA。值得注意的是,vacb诱导了针对GII.2的强IgG反应和针对GII.17的强IgA反应,与野生型NoV非复制病毒样颗粒(VLP)蛋白组引起的免疫反应相当。结论:计算机和体内实验结果表明,该管道和疫苗免疫原可为开发针对新病毒的多表位疫苗提供有价值的理论指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Integrated in-silico design and in vivo validation of multi-epitope vaccines for norovirus.

Background: Norovirus (NoVs) is a foodborne pathogen that causes acute gastroenteritis. The diversity of its principal antigenic protein poses a significant challenge to vaccine development and the prevention of large-scale outbreaks globally. Currently, no licensed vaccines against norovirus have been approved.

Methods: We developed a novel pipeline that integrates multiple bioinformatics tools to design broad-spectrum vaccines against NoVs. Specifically, broad-spectrum T-cell epitope vaccines were designed based on consensus sequences and optimized epitope screening, while broad-spectrum B-cell spatial epitope vaccines were constructed using high-throughput antigenicity calculations and epitope mapping.

Results: This pipeline underwent rigorous validation at three levels: firstly, In silico validation: Analysis of properties and structures demonstrated the appropriateness of amino acid composition and the structural integrity of the vaccine sequences. Secondly, theoretical assessment: Evaluation of human leukocyte antigen (HLA) subtype and antigenicity coverage indicated a broad theoretical protective spectrum for the designed vaccine immunogens. Furthermore, in silico simulation confirmed their ability to elicit an immune response. Finally, animal-level validation: Experiments in mice showed that both vaccine immunogens stimulated high levels of IgG and IgA. Notably, Vac-B induced a strong IgG response against GII.2 and a robust IgA response against GII.17, comparable to the immune response elicited by the wild-type NoV non-replicating virus-like particle (VLP) protein group.

Conclusions: Both in silico and in vivo experimental findings suggest that the proposed pipeline and vaccine immunogens could serve as valuable theoretical guidance for the development of multi-epitope vaccines against NoVs.

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来源期刊
Virology Journal
Virology Journal 医学-病毒学
CiteScore
7.40
自引率
2.10%
发文量
186
审稿时长
1 months
期刊介绍: Virology Journal is an open access, peer reviewed journal that considers articles on all aspects of virology, including research on the viruses of animals, plants and microbes. The journal welcomes basic research as well as pre-clinical and clinical studies of novel diagnostic tools, vaccines and anti-viral therapies. The Editorial policy of Virology Journal is to publish all research which is assessed by peer reviewers to be a coherent and sound addition to the scientific literature, and puts less emphasis on interest levels or perceived impact.
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