Construction of multi-epitope vaccine against the Rhipicephalus microplus tick: an immunoinformatics approach.

M Younas, K Ashraf, M Ijaz, M Suleman, T A Chohan, S U Rahman, M I Rashid
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Abstract

Rhipicephalus microplus, known as the hard tick, is a vector for the parasites Babesia spp. and Anaplasma marginale, both of which can cause significant financial losses to the livestock industry. There is currently no effective vaccine for R. microplus tick infestations, despite the identification of numerous prospective tick vaccine candidates. As a result, the current research set out to develop an immunoinformatics-based strategy using existing methods for designing a multi-epitope based vaccination that is not only effective but also safe and capable of eliciting cellular and humoral immune responses. First, R. microplus proteins Bm86, Subolesin, and Bm95 were used to anticipate and link B and T-cell epitopes (HTL and CTL) to one another. Antigenicity testing, allergenicity assessment, and toxicity screening were just a few of the many immunoinformatics techniques used to identify potent epitopes. Multi-epitope vaccine design was chosen based on the antigenic score 0.935 that is promising vaccine candidate. Molecular docking was used to determine the nature of the interaction between TLR2 and the vaccine construct. Finally, molecular dynamic simulation was used to assess the stability and compactness of the resulting vaccination based on docking scores. The developed vaccine was shown to be stable, have immunogenic qualities, be soluble, and to have high expression by in silico cloning. These findings suggest that experimental investigation of the multi-epitope based vaccine designed in the current study will produce achievable vaccine candidates against R. microplus ticks, enabling more effective control of infestations.

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构建针对 Rhipicephalus microplus 蜱的多表位疫苗:一种免疫信息学方法。
被称为硬蜱的 Rhipicephalus microplus 是巴贝西亚原虫(Babesia spp)和边疟原虫(Anaplasma marginale)的传播媒介,这两种寄生虫都会给畜牧业造成重大经济损失。尽管发现了许多潜在的蜱疫苗候选者,但目前还没有针对 R. microplus 蜱虫害的有效疫苗。因此,目前的研究着手开发一种基于免疫信息学的策略,利用现有方法设计一种基于多表位的疫苗,这种疫苗不仅有效,而且安全,能够引起细胞和体液免疫反应。首先,利用 R. microplus 蛋白 Bm86、Subolesin 和 Bm95 预测 B 细胞和 T 细胞表位(HTL 和 CTL)并将其相互连接。抗原性测试、过敏性评估和毒性筛选只是用于识别强效表位的众多免疫信息学技术中的一小部分。多表位疫苗设计是根据抗原性得分 0.935 来选择的,它是有希望的候选疫苗。分子对接用于确定 TLR2 与疫苗构建物之间相互作用的性质。最后,根据对接得分,采用分子动态模拟来评估疫苗的稳定性和紧凑性。结果表明,开发的疫苗具有稳定性、免疫原性、可溶性和高表达性。这些研究结果表明,对本研究中设计的基于多表位的疫苗进行实验研究将产生可实现的候选疫苗来对抗小加蜱,从而更有效地控制蜱虫的侵扰。
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