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Directed evolution to probe protein allostery and integrin I domains of 200000-fold higher affinity

机译:指导进化以探测亲和力高20万倍的蛋白质变构和整合素I结构域

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摘要

Understanding allostery may serve to both elucidate mechanisms of protein regulation and provide a basis for engineering active mutants. Herein we describe directed evolution applied to the integrin αL inserted domain for studying allostery by using a yeast surface display system. Many hot spots for activation are identified, and some single mutants exhibit remarkable increases of 10,000-fold in affinity for a physiological ligand, intercellular adhesion molecule-1. The location of activating mutations traces out an allosteric interface in the interior of the inserted domain that connects the ligand binding site to the α7-helix, which communicates allostery to neighboring domains in intact integrins. The combination of two activating mutations (F265S/F292G) leads to an increase of 200,000-fold in affinity to intercellular adhesion molecule-1. The F265S/F292G mutant is potent in antagonizing lymphocyte function-associated antigen 1-dependent lymphocyte adhesion, aggregation, and transmigration.
机译:了解变构可能有助于阐明蛋白质调节的机制,并为工程活性突变体提供基础。在本文中,我们描述了通过酵母表面展示系统将定向进化应用于整联蛋白αL插入域以研究变构作用。确定了许多激活热点,并且一些单个突变体显示出对生理配体细胞间粘附分子-1的亲和力显着增加10,000倍。激活突变的位置在插入的结构域的内部追溯了一个变构界面,该界面将配体结合位点连接到α7螺旋,从而将变构与完整整联蛋白中的相邻结构域进行通讯。两个激活突变(F265S / F292G)的组合导致与细胞间粘附分子-1的亲和力增加200,000倍。 F265S / F292G突变体可有效拮抗与淋巴细胞功能相关的抗原1依赖性淋巴细胞粘附,聚集和转运。

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