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Steered molecular dynamics simulations on the tail helix latch hypothesis in the gelsolin activation process.

机译:凝溶胶蛋白活化过程中尾螺旋锁假说的分子动力学模拟。

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摘要

The molecular basis of the "tail helix latch" hypothesis in the gelsolin activation process has been studied by using the steered molecular dynamics simulations. In the present nanosecond scale simulations, the tail helix of gelsolin was pulled away from the S2 binding surface, and the required forces were calculated, from which the properties of binding between the tail helix and S2 domain and their dynamic unbinding processes were obtained. The force profile provides a detailed rupture mechanism that includes six major unbinding steps. In particular, the hydrogen bonds formed between Arg-207 and Asp-744 and between Arg-221 and Leu-753 are of the most important interaction pairs. The two hydrogen bond "clamps" stabilize the complex. The subsequent simulation on Arg-207-Ala (R207A) mutation of gelsolin indicated that this mutation facilitates the unbinding of the tail helix and that the contribution of the hydrogen bond between Arg-207 and Asp-744 to the binding is more than 50%, which offers a new clue for further mutagenesis study on the activation mechanism of gelsolin. Surrounding water molecules enhance the stability of the tail helix and facilitate the rupture process. Additionally, temperature also has a significant effect on the conformation of the arginine and arginine-related interactions, which revealed the molecular basis of the temperature dependence in gelsolin activation.
机译:凝溶胶蛋白活化过程中的“尾螺旋闩锁”假说的分子基础已经通过使用分子动力学模拟进行了研究。在当前的纳秒级模拟中,将凝溶胶蛋白的尾螺旋从S2结合表面拉开,并计算所需的力,由此获得尾螺旋和S2域之间的结合性质以及它们的动态解结合过程。力的分布提供了详细的断裂机制,包括六个主要的解除约束步骤。特别地,在Arg-207和Asp-744之间以及在Arg-221和Leu-753之间形成的氢键是最重要的相互作用对。两个氢键“钳位”使络合物稳定。随后对凝溶胶蛋白的Arg-207-Ala(R207A)突变进行的模拟表明,该突变有助于尾螺旋的解除结合,并且Arg-207和Asp-744之间的氢键对结合的贡献超过50% ,为凝溶胶蛋白激活机制的进一步诱变研究提供了新的线索。周围的水分子增强了尾螺旋的稳定性,并促进了破裂过程。另外,温度对精氨酸和精氨酸相关相互作用的构象也有重要影响,这揭示了凝溶胶蛋白活化中温度依赖性的分子基础。

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