基于烯醇化酶蛋白的颗粒棘球绦虫硅疫苗设计

M. M. Pourseif, M. Yousefpour, M. Aminianfar, G. Moghaddam, A. Nematollahi
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引用次数: 33

摘要

包虫病是一种普遍存在的寄生虫性人畜共患疾病,在世界一些地区造成不同程度的医疗、经济和严重的公共卫生问题。致病生物是一种名为细粒棘球绦虫的多阶段寄生虫,其生命周期依赖于两种哺乳动物宿主,即最终宿主和中间宿主。方法:本研究以烯醇化酶作为颗粒棘球绦虫代谢的关键功能酶(EgEnolase)为目标,通过全面的计算机建模分析和设计宿主特异性多表位疫苗。采用modeleller v9.18软件对烯醇化酶的三维结构进行建模。b细胞表位(BEs)的预测是基于多方法方法和一些可靠的在线预测器。使用ClusPro v2.0服务器进行基于对接的T-helper表位预测。使用RaptorX服务器对疫苗的三维结构进行建模。对所设计的疫苗进行了免疫原性、理化性质和致敏性评价。根据大肠杆菌K12密码子使用表对疫苗序列进行密码子优化。最后,通过能量最小化和分子对接模拟疫苗与TLR-2和TLR-4的结合亲和力和配合物的稳定性。结果:所设计的多表位疫苗可诱导抗egenolase免疫,并有可能阻止颗粒棘球绦虫在最终宿主体内的存活和增殖。结论:基于上述结果,这种分步免疫信息学方法可作为设计多阶段寄生虫疫苗的合理平台。该多表位疫苗是一种很有前景的抗棘球蚴病预防药物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A multi-method and structure-based in silico vaccine designing against Echinococcus granulosus through investigating enolase protein
Introduction: Hydatid disease is a ubiquitous parasitic zoonotic disease, which causes different medical, economic and serious public health problems in some parts of the world. The causal organism is a multi-stage parasite named Echinococcus granulosus whose life cycle is dependent on two types of mammalian hosts viz definitive and intermediate hosts. Methods: In this study, enolase, as a key functional enzyme in the metabolism of E. granulosus (EgEnolase), was targeted through a comprehensive in silico modeling analysis and designing a host-specific multi-epitope vaccine. Three-dimensional (3D) structure of enolase was modeled using MODELLER v9.18 software. The B-cell epitopes (BEs) were predicted based on the multi-method approach and via some authentic online predictors. ClusPro v2.0 server was used for docking-based T-helper epitope prediction. The 3D structure of the vaccine was modeled using the RaptorX server. The designed vaccine was evaluated for its immunogenicity, physicochemical properties, and allergenicity. The codon optimization of the vaccine sequence was performed based on the codon usage table of E. coli K12. Finally, the energy minimization and molecular docking were implemented for simulating the vaccine binding affinity to the TLR-2 and TLR-4 and the complex stability. Results: The designed multi-epitope vaccine was found to induce anti-EgEnolase immunity which may have the potential to prevent the survival and proliferation of E. granulosus into the definitive host. Conclusion: Based on the results, this step-by-step immunoinformatics approach could be considered as a rational platform for designing vaccines against such multi-stage parasites. Furthermore, it is proposed that this multi-epitope vaccine is served as a promising preventive anti-echinococcosis agent.
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