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Prediction of spacer-α6 complex: a novel insight into binding of ADAMTS13 with A2 domain of von Willebrand factor under forces

机译:间隔α6复合物的预测:一种对力的A2域与von Willebrand因子的A2结构域结合的新颖洞察力

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Force-regulated cleavage of A2 domain of von Willebrand factor (vWF) by ADAMTS13 is a key event in preventing thrombotic thrombocytopenic purpura (TTP). Recognition and cleavage depend on cooperative and modular contacts between several ADAMTS13 subdomains and discrete segments of vWF A2 domain. Spacer domain of ADAMTS13 contains an important exosite interacting with α6 helix of unfold A2 domain, but it remains unclear whether stretching of α6 regulates binding to spacer. To understand the molecular mechanism underlying the interactions between spacer and α6 under stretching, we successfully predicted spacer-α6 complex by a novel computer strategy combined the steered molecular dynamics (SMD) and flexible docking techniques. This strategy included three steps: (1) constant-velocity SMD simulation of α6; (2) zero-velocity SMD simulations of α6, and (3) flexible dockings of α6 to spacer. In our spacer-α6 complex model, 13 key residues, six in α6 and seven in spacer, were identified. Our data demonstrated a biphasic extension-regulated binding of α6 to spacer. The binding strength of the complex increased with α6 extension until it reaches its optimum of 0.25?nm, and then decreased as α6 extension further increased, meaning that spacer is in favor to binding with a partially extended α6, which may contribute to the optimal contact and proteolysis. Changes of interface area and intermolecular salt bridge may serve as the molecular basis for this characteristic. These findings provide a novel insight into mechano-chemical regulation on interaction between ADAMTS13 and vWF A2 domain under forces.
机译:ADAMTS13的A2域A2域A2域的力调节切割是防止血栓形成血小板减少紫癜(TTP)的关键事件。识别和裂解取决于若干AdamTs13子域和VWF A2结构域的不同分段之间的协同和模块接触。 Adamts13的间隔结构域含有与展开A2结构域的α6螺旋相互作用的重要辐射,但仍然不清楚α6的拉伸是否调节与间隔物的结合。为了了解间隔物和α6之间的相互作用的分子机制,我们通过新颖的计算机策略成功地预测了间隔α6复合物,组合了转向分子动力学(SMD)和柔性对接技术。该策略包括三个步骤:(1)α6的恒流SMD仿真; (2)α6的零速度SMD模拟,(3)α6的柔性斩波到间隔物。在我们的间隔 - α6复杂模型中,确定了13个关键残留物,六个α6和七个在间隔物中。我们的数据证明了α6与间隔物的双相延伸调节结合。复合物的结合强度随α6延伸而增加,直至其达到其0.25Ωnm,然后随着α6延伸进一步增加而降低,这意味着间隔物有利于与部分延伸的α6结合,这可能有助于最佳接触和蛋白水解。界面面积和分子间盐桥的变化可以用作这种特性的分子基础。这些发现提供了对机械化学调控的新颖洞察力,用于在力下的ADAMTS13和VWF A2结构域之间的相互作用。

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