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Effect of sequence variation on the mechanical response of amyloid fibrils probed by steered molecular dynamics simulation

机译:操纵分子动力学模拟研究序列变异对淀粉样蛋白原纤维力学响应的影响

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摘要

The mechanical failure of mature amyloid fibers produces fragments that act as seeds for the growth of new fibrils. Fragmentation may also be correlated with cytotoxicity. We have used steered atomistic molecular dynamics simulations to study the mechanical failure of fibrils formed by the amyloidogenic fragment of human amylin hIAPP20-29 subjected to force applied in a variety of directions. By introducing systematic variations to this peptide sequence in silico, we have also investigated the role of the amino-acid sequence in determining the mechanical stability of amyloid fibrils. Our calculations show that the force required to induce mechanical failure depends on the direction of the applied stress and upon the degree of structural order present in the β-sheet assemblies, which in turn depends on the peptide sequence. The results have implications for the importance of sequence-dependent mechanical properties on seeding the growth of new fibrils and the role of breakage events in cytotoxicity.
机译:成熟的淀粉样蛋白纤维的机械故障会产生碎片,这些碎片充当新原纤维生长的种子。断裂也可能与细胞毒性有关。我们已经使用转向原子分子动力学模拟来研究由人胰岛淀粉样多肽hIAPP20-29的淀粉样蛋白生成片段所形成的原纤维的机械破坏,这些片段受到不同方向的作用力。通过在计算机上对该肽序列引入系统变异,我们还研究了氨基酸序列在确定淀粉样蛋白原纤维机械稳定性中的作用。我们的计算表明,引起机械故障所需的力取决于所施加应力的方向,并取决于存在于β-折叠组件中的结构顺序的程度,而该顺序又取决于肽序列。这些结果暗示了依赖序列的机械性能对新纤丝生长的重要性,以及断裂事件在细胞毒性中的作用。

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