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Prediction of MAYV peptide antigens for immunodiagnostic tests by immunoinformatics and molecular dynamics simulations

机译:免疫信息学和分子动力学模拟预测免疫诊断抗原免疫诊断试验

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The Mayaro virus is endemic to South America, and the?possible involvement of Aedes spp. mosquitoes in its transmission is a risk factor for outbreaks of greater proportions. The virus causes a potentially disabling illness known as Mayaro fever, which is similar to that caused by the chikungunya virus. The cocirculation of both viruses, with their clinical and structural similarities, and the absence of prophylactic and therapeutic measures highlight the need for studies that seek to understand the Mayaro virus. Using approaches in silico, we identified an antigenic and specific epitope (p_MAYV4) in domain A of the E2 glycoprotein of the Mayaro virus. This epitope was theoretically predicted to be stable and exposed on the surface of the protein, where it showed key properties that enable its interaction with neutralizing antibodies. These characteristics make it an interesting target for the development of immunodiagnostic platforms. Molecular dynamics simulation-based structural analysis showed that the PHE95 residue in the E1 fusion loop region is conserved among Alphavirus family members. PHE95 interacts with the hydrophobic residues of the E2 glycoprotein to form a cage-shaped structure that is critical to assemble and stabilize the E1/E2 heterodimer. These results provide important insights useful for the advancement of diagnostic platforms and the study of therapeutic alternatives.
机译:Mayaro病毒是南美洲的地方性,AEDES SPP可能参与。其传播中的蚊子是爆发更大比例的危险因素。病毒导致潜在致残的疾病,称为Mayaro发烧,其类似于Chikungunya病毒引起的。病毒的循环循环,其临床和结构性相似,并且没有预防性和治疗措施的突显突出了寻求理解Mayaro病毒的研究的需求。在硅藻中使用硅的方法,我们在Mayaro病毒的E2糖蛋白的结构域A中鉴定了抗原性和特异性表位(P_mayv4)。理论上预测该表位是稳定的并且暴露在蛋白质的表面上,其中它显示出能够与中和抗体相互作用的关键特性。这些特征使其成为发展免疫因素平台的有趣目标。基于分子动力学模拟的结构分析表明,E1融合环区域中的PHE95残基在alphaVirus家族成员之间保守。 PHE95与E2糖蛋白的疏水性残基相互作用,形成笼状结构,这对于组装并稳定E1 / E2异二聚体至关重要。这些结果为诊断平台和治疗替代品的研究提供了重要的见解。

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