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Identification of Interacting Hot Spots in the β3 Integrin Stalk Using Comprehensive Interface Design

机译:使用全面的界面设计识别β3整联蛋白茎中相互作用的热点

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摘要

Protein-protein interfaces are usually large and complementary surfaces, but specific side chains, representing energetic “hot spots,” often contribute disproportionately to binding free energy. We used a computational method, comprehensive interface design, to identify hot spots in the interface between the stalk regions of the β3 and the complementary αIIb and αv integrin subunits. Using the Rosetta alanine-scanning and design algorithms to predict destabilizing, stabilizing, and neutral mutations in the β3 region extending from residues Lys532 through Gly690, we predicted eight alanine mutations that would destabilize the αIIbβ3 interface as well as nine predicted to destabilize the αvβ3 interface, by at least 0.3 kcal/mol. The mutations were widely and unevenly distributed, with four between residues 552 and 563 and five between 590 and 610, but none between 565 and 589, and 611 and 655. Further, mutations destabilizing the αvβ3 and αIIbβ3 interfaces were not identical. The predictions were then tested by introducing selected mutations into the full-length integrins expressed in Chinese hamster ovary cells. Five mutations predicted to destabilize αIIb and β3 caused fibrinogen binding to αIIbβ3, whereas three of four predicted to be neutral or stabilizing did not. Conversely, a mutation predicted to destabilize αvβ3, but not αIIbβ3 (D552A), caused osteopontin binding to αvβ3, but not fibrinogen binding to αIIbβ3. These results indicate that stability of the distal stalk interface is involved in constraining integrins in stable, inactive conformations. Further, they demonstrate the ability of comprehensive interface design to identify functionally significant integrin mutations.
机译:蛋白质-蛋白质界面通常是较大且互补的表面,但是代表高能“热点”的特定侧链通常对结合自由能的贡献不成比例。我们使用一种计算方法,全面的界面设计来识别β3茎区域与互补αIIb和αv整联蛋白亚基之间的界面中的热点。使用Rosetta丙氨酸扫描和设计算法预测从残基Lys 532 到Gly 690 的β3区的不稳定,稳定和中性突变,我们预测了8个丙氨酸突变会破坏αIIbβ3界面的稳定性,以及9种预计会破坏αvβ3界面的稳定性,至少0.3 kcal / mol。突变分布广泛且分布不均,其中第552个残基在552和563之间,五个在590和610之间,但在565和589之间以及在611和655之间没有突变。此外,破坏αvβ3和αIIbβ3界面的突变也不相同。然后通过将选定的突变引入中国仓鼠卵巢细胞表达的全长整联蛋白中来检验这些预测。预期使αIIb和β3不稳定的5个突变导致纤维蛋白原与αIIbβ3结合,而预期为中性或稳定的4个突变中的3个则没有。相反,预计会破坏αvβ3而不是使αIIbβ3失去稳定性的突变(D552A)导致骨桥蛋白与αvβ3结合,但未与纤维蛋白原结合至αIIbβ3。这些结果表明远端茎杆界面的稳定性涉及以稳定的,非活性的构象约束整合素。此外,他们展示了全面的界面设计能力,可识别功能上重要的整联蛋白突变。

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