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Thrombosis and Hemostasis: Building better fibrin knob mimics: an investigation of synthetic fibrin knob peptide structures in solution and their dynamic binding with fibrinogen/fibrin holes

机译:血栓形成和止血:建立更好的纤维蛋白瘤模拟物:溶液中合成纤维蛋白瘤肽结构的研究及其与纤维蛋白原/纤维蛋白孔的动态结合

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摘要

Fibrin polymerizes via noncovalent and dynamic association of thrombin-exposed “knobs” with complementary “holes.” Synthetic knob peptides have received significant interest as a means for understanding fibrin assembly mechanisms and inhibiting fibrin polymerization. Nevertheless, the inability to crystallize short peptides significantly limits our understanding of knob peptide structural features that regulate dynamic knob:hole interactions. In this study, we used molecular simulations to generate the first predicted structure(s) of synthetic knobs in solution before fibrin hole engagement. Combining surface plasmon resonance (SPR), we explored the role of structural and electrostatic properties of knob “A” mimics in regulating knob:hole binding kinetics. SPR results showed that association rates were most profoundly affected by the presence of both additional prolines as well as charged residues in the sixth to seventh positions. Importantly, analyzing the structural dynamics of the peptides through simulation indicated that the 3Arg side chain orientation and peptide backbone stability each contribute significantly to functional binding. These findings provide insights into early fibrin protofibril assembly dynamics as well as establishing essential design parameters for high-affinity knob mimics that more efficiently compete for hole occupancy, parameters realized here through a novel knob mimic displaying a 10-fold higher association rate than current mimics.
机译:纤维蛋白通过凝血酶暴露的“旋钮”与互补的“孔”的非共价和动态缔合聚合。作为理解血纤蛋白组装机理和抑制血纤蛋白聚合的手段,合成的节状肽已经引起了极大的兴趣。然而,不能结晶短肽极大地限制了我们对调节动态结:孔相互作用的结肽结构特征的理解。在这项研究中,我们使用分子模拟在纤维蛋白孔啮合之前在溶液中生成合成纽结的第一个预测结构。结合表面等离振子共振(SPR),我们探讨了旋钮“ A”模拟物的结构和静电特性在调节旋钮:空穴结合动力学中的作用。 SPR结果表明,缔合率受其他脯氨酸以及第六至第七位带电残基的影响最大。重要的是,通过模拟分析肽的结构动力学表明,3Arg侧链的方向和肽主链的稳定性都显着促进了功能结合。这些发现为早期的纤维蛋白原纤维组装动力学提供了见识,并为高亲和力的旋钮模拟物建立了必不可少的设计参数,从而可以更有效地竞争空位,此处通过新颖的旋钮模拟物实现的参数显示的结合率比目前的模拟物高10倍。 。

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