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Structural, energetic, and functional analysis of a protein-protein interface at distinct stages of affinity maturation

机译:在亲和力成熟的不同阶段进行蛋白质-蛋白质界面的结构,能量和功能分析

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Due to a paucity of studies that synthesize structural, energetic, and functional analyses of a series of protein complexes representing distinct stages in an affinity maturation pathway, the biophysical basis for the molecular evolution of protein-protein interactions is poorly understood. Here, we combine crystal structures and binding-free energies of a series of variant superantigen (SAG)-major histocompatibility complex (MHC) class II complexes exhibiting increasingly higher affinity to reveal that this affinity maturation pathway is controlled largely by two biophysical factors: shape complementarity and buried hydrophobic surface. These factors, however, do not contribute equivalently to the affinity maturation of the interface, as the former dominates the early steps of the maturation process while the latter is responsible for improved binding in later steps. Functional assays reveal how affinity maturation of the SAG-MHC interface corresponds to T cell activation by SAGs. [References: 42]
机译:由于缺乏足够的研究来合成代表亲和力成熟途径不同阶段的一系列蛋白质复合物的结构,能量和功能分析,因此人们对蛋白质-蛋白质相互作用的分子进化的生物物理基础了解甚少。在这里,我们结合了显示出越来越高亲和力的一系列变体超抗原(SAG)-主要组织相容性复合物(MHC)II类复合物的晶体结构和无结合能,揭示了这种亲和力成熟途径主要受两个生物物理因素控制:形状互补性并掩埋疏水表面。但是,这些因素对接口的亲和力成熟不具有同等的作用,因为前者在成熟过程的早期步骤中占主导地位,而后者则在后面的步骤中改善了结合。功能测定揭示了SAG-MHC界面的亲和力成熟度如何对应于SAG激活T细胞。 [参考:42]

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