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计算机设计针对鱼类(罗非鱼属)细菌性和病毒性疾病的新型嵌合多表位疫苗。

Computational design of novel chimeric multiepitope vaccine against bacterial and viral disease in tilapia (Oreochromis sp.).

机构信息

Department of Biochemistry, Faculty of Science, Kasetsart University, 50 Ngam Wong Wan, Chatuchak, 10900, Bangkok, Thailand.

Kasetsart Vaccines and Bio-Product Innovation Centre, Kasetsart University, 50 Ngam Wong Wan, Chatuchak, 10900, Bangkok, Thailand.

出版信息

Sci Rep. 2024 Jun 18;14(1):14048. doi: 10.1038/s41598-024-64383-z.

Abstract

Regarding several infectious diseases in fish, multiple vaccinations are not favorable. The chimeric multiepitope vaccine (CMEV) harboring several antigens for multi-disease prevention would enhance vaccine efficiency in terms of multiple disease prevention. Herein, the immunogens of tilapia's seven pathogens including E. tarda, F. columnare, F. noatunensis, S. iniae, S. agalactiae, A. hydrophila, and TiLV were used for CMEV design. After shuffling and annotating the B-cell epitopes, 5,040 CMEV primary protein structures were obtained. Secondary and tertiary protein structures were predicted by AlphaFold2 creating 25,200 CMEV. Proper amino acid alignment in the secondary structures was achieved by the Ramachandran plot. In silico determination of physiochemical and other properties including allergenicity, antigenicity, glycosylation, and conformational B-cell epitopes were determined. The selected CMEV (OSLM0467, OSLM2629, and OSLM4294) showed a predicted molecular weight (MW) of 70 kDa, with feasible sites of N- and O-glycosylation, and a number of potentially conformational B-cell epitope residues. Molecular docking, codon optimization, and in-silico cloning were tested to evaluate the possibility of protein expression. Those CMEVs will further elucidate in vitro and in vivo to evaluate the efficacy and specific immune response. This research will highlight the new era of vaccines designed based on in silico structural vaccine design.

摘要

关于鱼类的几种传染病,多次接种并不理想。携带多种抗原用于多疾病预防的嵌合多表位疫苗 (CMEV) 将在多种疾病预防方面提高疫苗效率。在此,使用罗非鱼的七种病原体(包括迟缓爱德华氏菌、柱状屈挠杆菌、无乳链球菌、虹彩病毒、石斑鱼虹彩病毒、嗜水气单胞菌和传染性造血器官坏死病毒)的免疫原设计 CMEV。经过 B 细胞表位的洗牌和注释,获得了 5040 个 CMEV 初级蛋白结构。使用 AlphaFold2 预测二级和三级蛋白结构,创建了 25200 个 CMEV。通过 Ramachandran 图实现二级结构中适当的氨基酸排列。通过计算确定了物理化学和其他特性,包括变应原性、抗原性、糖基化和构象 B 细胞表位。选定的 CMEV(OSLM0467、OSLM2629 和 OSLM4294)显示预测的分子量 (MW) 为 70 kDa,具有可行的 N-和 O-糖基化位点,以及许多潜在的构象 B 细胞表位残基。分子对接、密码子优化和计算机克隆试验评估了蛋白质表达的可能性。这些 CMEV 将进一步在体外和体内进行阐明,以评估其功效和特异性免疫反应。这项研究将突出基于计算机结构疫苗设计的新时代疫苗。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6d30/11189486/16bd53a4b9bc/41598_2024_64383_Fig1_HTML.jpg

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