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Deformation behavior and mechanical properties of amyloid protein nanowires

机译:淀粉样蛋白纳米线的变形行为和力学性能

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Amyloid fibrils are most often associated with their pathological role in diseases like Alzheimer's disease and Parkinson's disease, but they are now increasingly being considered for uses in functional engineering materials. They are among the stiffest protein fibers known but they are also rather brittle, and it is unclear how this combination of properties affects the behavior of amyloid structures at larger length scales, such as in films, wires or plaques. Using a coarse-grained model for amyloid fibrils, we study the mechanical response of amyloid nanowires and examine fundamental mechanical properties, including mechanisms of deformation and failure under tensile loading. We also explore the effect of varying the breaking strain and adhesion strength of the constituent amyloid fibrils on the properties of the larger structure. We find that deformation in the nanowires is controlled by a combination of fibril sliding and fibril failure and that there exists a transition from brittle to ductile behavior by either increasing the fibril failure strain or decreasing the strength of adhesion between fibrils. Furthermore, our results reveal that the mechanical properties of the nanowires are quite sensitive to changes in the properties of the individual fibrils, and the larger scale structures are found to be more mechanically robust than the constituent fibrils, for all cases considered. More broadly, this work demonstrates the promise of utilizing self-assembled biological building blocks in the development of hierarchical nanomaterials.
机译:淀粉样蛋白原纤维最常与它们在诸如阿尔茨海默氏病和帕金森氏病等疾病中的病理作用有关,但现在越来越多地考虑将其用于功能工程材料中。它们是已知的最坚硬的蛋白质纤维之一,但它们也相当脆,并且尚不清楚这种特性的组合如何影响较大长度尺度(如薄膜,金属丝或噬菌斑)中淀粉样蛋白结构的行为。使用淀粉样蛋白纤维的粗粒度模型,我们研究了淀粉样蛋白纳米线的机械响应,并研究了基本的机械性能,包括拉伸载荷下的变形和破坏机理。我们还探讨了改变淀粉样蛋白原纤维断裂应变和粘附强度对较大结构性能的影响。我们发现纳米线中的变形是由原纤维滑动和原纤维破坏的组合来控制的,并且通过增加原纤维破坏应变或降低原纤维之间的粘合强度,存在从脆性到延性行为的过渡。此外,我们的结果表明,对于所有考虑的情况,纳米线的机械性能对单个纤丝性能的变化都非常敏感,并且发现较大尺寸的结构比构成纤丝的机械强度更高。更广泛地说,这项工作表明了在分层纳米材料的开发中利用自组装生物构件的希望。

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