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Flaw tolerance of nuclear intermediate filament lamina under extreme mechanical deformation

机译:极度机械变形下核中间丝层的缺陷容限

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摘要

The nuclear lamina, composed of intermediate filaments, is a structural protein meshwork at the nuclear membrane that protects genetic material and regulates gene expression. Here we uncover the physical basis of the material design of nuclear lamina that enables it to withstand extreme mechanical deformation of >100% strain despite the presence of structural defects. Through a simple in silico model we demonstrate that this is due to nanoscale mechanisms including protein unfolding, alpha-to-beta transition, and sliding, resulting in a characteristic nonlinear force-extension curve. At the larger microscale this leads to an extreme delocalization of mechanical energy dissipation, preventing catastrophic crack propagation. Yet, when catastrophic failure occurs under extreme loading, individual protein filaments are sacrificed rather than the entire meshwork. This mechanism is theoretically explained by a characteristic change of the tangent stress-strain hardening exponent under increasing strain. Our results elucidate the large extensibility of the nuclear lamina within muscle or skin tissue and potentially many other protein materials that are exposed to extreme mechanical conditions, and provide a new paradigm toward the de novo design of protein materials by engineering the nonlinear stress-strain response to facilitate flaw-tolerant behavior.
机译:由中间细丝组成的核层是核膜上的结构蛋白网,可保护遗传物质并调节基因表达。在这里,我们揭示了核薄层材料设计的物理基础,即使存在结构缺陷,它也能够承受大于100%应变的极端机械变形。通过一个简单的计算机模型,我们证明这是由于纳米级机理所致,包括蛋白质解折叠,α-β过渡和滑动,从而形成了特征性的非线性力-延伸曲线。在较大的微观尺度上,这会导致机械能耗散的极端分散,从而防止灾难性的裂纹扩展。然而,当极端负载下发生灾难性故障时,牺牲的是单独的蛋白质丝而不是整个网。从理论上讲,这种机制是通过在应变增加时切线应力应变硬化指数的特征变化来解释的。我们的研究结果阐明了在肌肉或皮肤组织中的核层板以及可能暴露于极端机械条件下的许多其他蛋白质材料的广泛扩展性,并通过设计非线性应力-应变响应为蛋白质材料的从头设计提供了新的范例促进容错行为。

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