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首页> 外文期刊>International journal of bioinformatics research and applications >In silico identification of vaccine candidate from various screening methods against hepatitis C virus
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In silico identification of vaccine candidate from various screening methods against hepatitis C virus

机译:在针对丙型肝炎病毒的各种筛选方法中疫苗候选疫苗候选的硅鉴定

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Hepatitis C virus (HCV) being an infectious disease is prevalent in most parts of the world. Till date, no vaccine is being developed in the market for HCV. This paper focuses mainly on developing a peptide-based vaccine against HCV. The purpose for this study is taken to determine the suitable epitope with the help of Bioinformatics tools developed for designing a vaccine against infectious diseases such as HCV. In present work, T-cell epitope is taken into consideration, as it recognises the antigen that helps to generate peptide with the help of antigen presenting cell. With respect to T-cell epitope selection, high binding energy must be required for binding major histocompatibility complex molecule. Moreover, T-cell epitope were considered on the basis of conserved site, protease cleavage site, motif, as well as an excellent hydrophobic binding pocket with a high half-life of dissociation. In consideration to the mentioned criteria, the required bioinformatics tools are used which are designed to predict the epitopes from different envelope and non-structural proteins of HCV virus. On an average, 1,000 epitopes from various databases and tools were extracted, from which 11 adept epitopes were withdrawn virtually with a base of binding energy using MHC I and II molecule protein interaction. The best epitope predicted during study was IMYAPTIWV peptide of NS5A protein. The T-cell predicted epitope can be further used for later chore in vaccine discovery for HCV.
机译:在世界大部分地区,丙型肝炎病毒(HCV)是一种传染病。截至日期,HCV市场上没有开发疫苗。本文主要侧重于开发肽的疫苗对HCV进行抗癌。本研究的目的是为了确定合适的表位,以及用于设计针对HCV等传染病的疫苗的生物信息学工具。在目前的工作中,考虑到T细胞表位,因为它识别有助于在抗原呈递细胞的帮助下产生肽的抗原。关于T细胞表位选择,必须需要高结合能以结合主要组织相容性复合物分子。此外,基于保守部位,蛋白酶切割位点,蛋白酶和优异的疏水结合口袋,考虑了T细胞表位,以及具有高离解的半衰期的优异的疏水结合口袋。考虑到提到的标准,使用所需的生物信息学工具,其设计用于预测来自HCV病毒的不同包络和非结构蛋白的表位。在平均而言,提取来自各种数据库和工具的1,000个表位,其中使用MHC I和II分子蛋白相互作用几乎从结合能量的基础取出11个adept表位。在研究期间预测的最佳表位是NS5A蛋白的IMYAPTIWV肽。 T细胞预测表位可以进一步用于患有HCV的疫苗发现中的后期核心。

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