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Nonlinear elasticity in biological gels

机译:生物凝胶中的非线性弹性

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The mechanical properties of soft biological tissues are essential to their physiological function and cannot easily be duplicated by synthetic materials. Unlike simple polymer gels, many biological materials - including blood vessels(1), mesentery tissue(2), lung parenchyma(3), cornea(4) and blood clots(5) - stiffen as they are strained, thereby preventing large deformations that could threaten tissue integrity. The molecular structures and design principles responsible for this nonlinear elasticity are unknown. Here we report a molecular theory that accounts for strain-stiffening in a range of molecularly distinct gels formed from cytoskeletal and extracellular proteins and that reveals universal stress - strain relations at low to intermediate strains. The input to this theory is the force - extension curve for individual semi-flexible filaments and the assumptions that biological networks composed of these filaments are homogeneous, isotropic, and that they strain uniformly. This theory shows that systems of filamentous proteins arranged in an open crosslinked mesh invariably stiffen at low strains without requiring a specific architecture or multiple elements with different intrinsic stiffness.
机译:软的生物组织的机械特性对其生理功能至关重要,不能轻易通过合成材料复制。与简单的聚合物凝胶不同,许多生物材料(包括血管(1),肠系膜组织(2),肺实质(3),角膜(4)和血凝块(5))在应变时会变硬,从而防止较大的变形可能会威胁组织的完整性。负责这种非线性弹性的分子结构和设计原理是未知的。在这里,我们报道了一种分子理论,该理论解释了由细胞骨架和细胞外蛋白形成的一系列分子不同的凝胶中的应变加强,并揭示了从低应变到中等应变的普遍应力-应变关系。该理论的输入是各个半柔性细丝的力-延伸曲线,并假设由这些细丝组成的生物网络是均质的,各向同性的,并且它们的应变均匀。该理论表明,排列在一个开放的交联网格中的丝状蛋白质系统在低应变下始终会变硬,而无需特定的结构或具有不同固有刚度的多个元素。

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