环形泰勒菌(TaSPAG1)孢子体表面抗原1的计算机分析用于针对泰勒菌病的多表位疫苗设计。

In Silico Pharmacology Pub Date : 2023-07-19 eCollection Date: 2023-01-01 DOI:10.1007/s40203-023-00153-5
Mojtaba Azimi-Resketi, Mehdi Akbari, Saeed Heydaryan, Amirreza Eftekhari, Javad Balali, Morteza Shams, Dariush Sargazi
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引用次数: 0

摘要

热带泰勒虫病是一种由环状泰勒虫引起的原生动物感染,对世界各地的牛有重大影响。本研究旨在分析TaSPAG1蛋白并设计一种新的多表位候选疫苗。在线工具用于预测理化性质、抗原性、致敏性、溶解度、跨膜结构域和信号肽、翻译后修饰(PTM)位点、二级和三级结构以及内在无序区域,随后鉴定和筛选潜在的线性和构象B细胞表位以及那些对结合牛主要组织相容性复合体I类(MHC-I)分子具有亲和力的肽。接下来,设计并分析了一种多表位疫苗构建体。该907残基蛋白具有亲水性(GRAVY:-0.399)和酸性(pI:5.04),具有较高的耐热性(脂族:71.27)。此外,预测了TaSPAG1的5个线性和12个构象的B细胞表位以及8个CTL表位。355残基候选疫苗的分子量约为35kDa,具有抗原性、非致敏性、可溶性和稳定性,成功地与牛MHC-I分子相互作用,并最终克隆到pET28a(+)载体中。需要进行进一步的湿法研究来评估疫苗在牛身上的效力。补充信息:在线版本包含补充材料,可访问10.1007/s40203-023-00153-5。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
In silico analysis of sporozoite surface antigen 1 of Theileria annulata (TaSPAG1) for multi-epitope vaccine design against theileriosis.

Tropical theileriosis is a protozoan infection caused by Theileria annulata, which significantly affects cattle worldwide. This study was aimed to analyze the TaSPAG1 protein and design a novel multi-epitope vaccine candidate. Online tools were employed for the prediction of Physico-chemical properties, antigenicity, allergenicity, solubility, transmembrane domains and signal peptide, posttranslational modification (PTM) sites, secondary and tertiary structures as well as intrinsically disordered regions, followed by identification and screening of potential linear and conformational B-cell epitopes and those peptides having affinity to bind bovine major histocompatibility complex class I (MHC-I) molecules. Next, a multi-epitope vaccine construct was designed and analyzed. This 907-residue protein was hydrophilic (GRAVY: -0.399) and acidic (pI: 5.04) in nature, with high thermotolerance (aliphatic: 71.27). Also, 5 linear and 12 conformational B-cell epitopes along with 8 CTL epitopes were predicted for TaSPAG1. The 355-residue vaccine candidate had a MW of about 35 kDa and it was antigenic, non-allergenic, soluble and stable, which was successfully interacted with cattle MHC-I molecule and finally cloned into the pET28a(+) vector. Further wet studies are required to assess the vaccine efficacy in cattle.

Supplementary information: The online version contains supplementary material available at 10.1007/s40203-023-00153-5.

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