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一种利用结构VP蛋白开发针对口蹄疫病毒的多表位疫苗的新型免疫信息学方法。

A novel immunoinformatics approach for developing a poly-epitope vaccine targeting foot and mouth disease virus, exploiting structural VP proteins.

作者信息

Bhutta Muhammad Saad, Awais Muhammad, Sadaqat Sahar, Zanchi Fernando Berton, Shahid Naila, Qayyum Rao Abdul

机构信息

Center of Excellence in Molecular Biology (CEMB), University of the Punjab, Lahore, Pakistan.

Bioinformatics and Medicinal Chemistry Laboratory, LABIOQUIM/FIOCRUZ, Rondônia, Brazil.

出版信息

J Biomol Struct Dyn. 2025 Aug;43(12):6171-6187. doi: 10.1080/07391102.2024.2328735. Epub 2024 Mar 15.

Abstract

Foot and mouth Disease virus (FMDV) belongs to Picornaviridae family and Aphthovirus genus causing Foot and mouth disease (FMD) in cloven-hoofed animals. FMDV, a prevalent virus induces both acute and chronic infections with high mutation rates resulting in seven primary serotypes, making vaccine development indispensable. Due to time and cost effectiveness of the immunoinformatic approach, we designed in-silico polyepitope vaccine (PEV) for the curtailment of FMDV. Structural and immunogenic parts of FMDV (Viral Protein 1 (VP1), Viral Protein 2 (VP2), Viral Protein 3 (VP3), and Viral Protein 4 (VP4)) were used to design the cytotoxic T Lymphocyte (CTL), Helper T Lymphocyte (HTL), and B-cell epitopes, followed by screening for antigenic, non-allergenic, Interferon (IFN) simulator, and non-toxicity, which narrowed down to 7 CTL, 3 HTL, and 12 B-cell epitopes. These selected epitopes were linked using appropriate linkers and Cholera Toxin B (CTB) adjuvant for immunological modulation. The physiochemical analyses followed by the structure prediction demonstrated the stability, hydrophilicity and solubility of the PEV. The interactions and stability between the vaccine, Toll like Receptor 3 (TLR3) and Toll like receptor 7 (TLR7) were revealed by molecular docking and Molecular Mechanics/Poisson Boltzmann Surface Area (MMPBSA) with high stability and compactness verified by MD simulation. In-silico immune simulation demonstrated a strong immunological response. FMDV-PEV (Poly epitope vaccine) will be effectively produced in an system, as codon optimization and cloning in an expression vector was performed. The effectiveness, safety, and immunogenicity profile of FMDV-PEV may be confirmed by further experimental validations.

摘要

口蹄疫病毒(FMDV)属于小核糖核酸病毒科口疮病毒属,可引起偶蹄动物的口蹄疫(FMD)。FMDV是一种流行病毒,会引发急性和慢性感染,且突变率高,产生七种主要血清型,这使得疫苗研发不可或缺。由于免疫信息学方法具有时间和成本效益,我们设计了用于遏制FMDV的计算机模拟多表位疫苗(PEV)。利用FMDV的结构和免疫原性部分(病毒蛋白1(VP1)、病毒蛋白2(VP2)、病毒蛋白3(VP3)和病毒蛋白4(VP4))来设计细胞毒性T淋巴细胞(CTL)、辅助性T淋巴细胞(HTL)和B细胞表位,随后筛选抗原性、非致敏性、干扰素(IFN)模拟物和无毒性,最终确定了7个CTL表位、3个HTL表位和12个B细胞表位。使用适当的接头连接这些选定的表位,并使用霍乱毒素B(CTB)佐剂进行免疫调节。随后的理化分析和结构预测证明了PEV的稳定性、亲水性和溶解性。通过分子对接以及分子力学/泊松玻尔兹曼表面积(MMPBSA)揭示了疫苗与Toll样受体3(TLR3)和Toll样受体7(TLR7)之间的相互作用和稳定性,通过分子动力学模拟验证了其具有高稳定性和紧密性。计算机模拟免疫显示出强烈的免疫反应。由于进行了密码子优化并克隆到表达载体中,FMDV-PEV(多表位疫苗)将在一个系统中有效生产。FMDV-PEV的有效性、安全性和免疫原性概况可能需要通过进一步的实验验证来确认。

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