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用于设计针对. 的多表位疫苗的先进疫苗组学、免疫信息学和分子建模策略。

Advanced vaccinomic, immunoinformatic, and molecular modeling strategies for designing Multi- epitope vaccines against the .

机构信息

Department of Clinical Laboratory Sciences, College of Applied Medical Sciences, Jouf University, Sakaka, Saudi Arabia.

出版信息

Front Immunol. 2024 Aug 16;15:1454394. doi: 10.3389/fimmu.2024.1454394. eCollection 2024.

Abstract

The increasing and ongoing issue of antibiotic resistance in bacteria is of huge concern globally, mainly to healthcare facilities. It is now crucial to develop a vaccine for therapeutic and preventive purposes against the bacterial species causing hospital-based infections. Among the many antibiotic- resistant bacterial pathogens, the (ECC) including six species, , , , and , are dangerous to public health and may worsen the situation. Vaccination plays a vital role in the prevention of infections and infectious diseases. This research highlighted the construction and design of a multi-epitope vaccine for the complex by retrieving their complete sequenced proteome. The retrieved proteome was assessed to opt for potential vaccine candidates using immunoinformatic tools. Both B and T-cell epitopes were predicted in order to create both humoral and cellular immunity and further scrutinized for antigenicity, allergenicity, water solubility, and toxicity analysis. The final potential epitopes were subjected to population coverage analysis. Major histocompatibility complex (MHC) class combined, and MHC Class I and II world population coverage was obtained as 99.74%, and 98.55% respectively while a combined 81.81% was covered. A multi-epitope peptide-based vaccine construct consisting of the adjuvant, epitopes, and linkers was subjected to the ProtParam tool to calculate its physiochemical properties. The total amino acids were 236, the molecular weight was 27.64kd, and the vaccine construct was stable with an instability index of 27.01. The Grand Average of Hydropathy (GRAVY) (hydrophilicity) value obtained was -0.659, being more negative and depicting the hydrophilic character. It was non-allergen antigenic with an antigenicity of 0.8913. The vaccine construct was further validated for binding efficacy with immune cell receptors MHC-I, MHC-II, and Toll-like receptor (TLR)-4. The molecular docking results depict that the designed vaccine has good binding potency with immune receptors crucial for antigen presentation and processing. Among the Vaccine-MHC-I, Vaccine-MHC-II, and Vaccine-TLR-4 complexes, the best-docked poses were identified based on their lowest binding energy scores of -886.8, -995.6, and -883.6, respectively. Overall, we observed that the designed vaccine construct can evoke a proper immune response and the construct could help experimental researchers in the formulation of a vaccine against the targeted pathogens.

摘要

细菌对抗生素的耐药性日益严重,这是一个全球性的巨大问题,尤其是对医疗机构而言。现在,迫切需要开发一种针对引起医院感染的细菌的治疗性和预防性疫苗。在许多抗生素耐药性细菌病原体中,肠球菌属(ECC)包括 6 个种,即屎肠球菌、粪肠球菌、鸟肠球菌、耐久肠球菌、铅黄肠球菌和鸡肠球菌,对公众健康构成威胁,并可能使情况恶化。疫苗接种在预防感染和传染病方面发挥着重要作用。本研究通过检索其完整的测序蛋白质组,强调了针对肠球菌属复杂的多表位疫苗的构建和设计。使用免疫信息学工具评估检索到的蛋白质组,以选择潜在的疫苗候选物。预测了 B 细胞和 T 细胞表位,以产生体液和细胞免疫,并进一步对其抗原性、过敏性、水溶性和毒性进行分析。最后对潜在的表位进行了人群覆盖率分析。主要组织相容性复合体(MHC)类结合,MHC 类 I 和 II 世界人群覆盖率分别为 99.74%和 98.55%,综合覆盖率为 81.81%。包含佐剂、表位和接头的多表位肽疫苗构建体被提交给 ProtParam 工具,以计算其理化性质。总氨基酸数为 236,分子量为 27.64kd,疫苗构建体稳定,不稳定性指数为 27.01。获得的平均亲水性(GRAVY)(亲水性)值为-0.659,更负,说明亲水性。它是非过敏原性的,抗原性为 0.8913。进一步验证了疫苗构建体与免疫细胞受体 MHC-I、MHC-II 和 Toll 样受体(TLR)-4 的结合效力。分子对接结果表明,设计的疫苗与对抗原呈递和加工至关重要的免疫受体具有良好的结合能力。在疫苗-MHC-I、疫苗-MHC-II 和疫苗-TLR-4 复合物中,根据最低结合能评分-886.8、-995.6 和-883.6,分别确定了最佳对接构象。总的来说,我们观察到设计的疫苗构建体可以引起适当的免疫反应,并且该构建体可以帮助实验研究人员开发针对靶向病原体的疫苗。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3f07/11362624/1d0c6858259b/fimmu-15-1454394-g001.jpg

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