Single-molecule force spectroscopy shows that side chain interactions govern the mechanochemical response of polypeptide α-helices and prevent the formation of β-sheets†

Marie Asano, Damien Sluysmans, Nicolas Willet, Colin Bonduelle, Sébastien Lecommandoux and Anne-Sophie Duwez
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Abstract

Secondary α-helix and β-sheet structures are key scaffolds around which the rest of the residues condense during protein folding. Despite their key role in numerous processes to maintain life, little is known about their properties under force. Their stability under mechanical stress, as constantly experienced in the turbulent environment of cells, is however essential. Here, we designed and synthesized two pH-responsive polypeptides, poly(L-glutamic acid) and poly(L-lysine), for single-molecule mechanochemistry experiments using AFM to probe the mechanical unfolding of α-helix and β-sheet secondary motifs. The force experiments, supported by simulations, reveal a superior mechanical stability of the poly(L-lysine) α-helix, which we attribute to hydrophobic interactions of the alkyl side chains. Most importantly, our results show that these interactions play a key role in inhibiting the formation of a metastable β-sheet-like structure when the polypeptide is subjected to mechanical deformations, which might have important implications in the mechanism behind polyQ diseases.

Abstract Image

单分子力谱分析表明,侧链相互作用控制了多肽α-螺旋的机械化学反应,并阻止了β-片†的形成
二级α-螺旋结构和β-片结构是蛋白质折叠过程中剩余残基凝聚的关键支架。尽管它们在维持生命的许多过程中起着关键作用,但人们对它们在外力作用下的特性知之甚少。然而,它们在机械应力下的稳定性,就像在细胞的动荡环境中不断经历的那样,是必不可少的。在此,我们设计并合成了两个ph响应多肽,聚l -谷氨酸和聚l -赖氨酸,用于单分子机械化学实验,利用原子力显微镜(AFM)探测α-螺旋和β-片二级基序的机械展开。力实验和模拟结果表明,聚l -赖氨酸α-螺旋结构具有优异的机械稳定性,这归因于烷基侧链的疏水相互作用。最重要的是,我们的研究结果表明,当多肽遭受机械变形时,这些相互作用在抑制亚稳态β-片状结构的形成中起关键作用,这可能对多肽疾病背后的机制具有重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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