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半柔性束状网络的多尺度应变强化

Multi-scale strain-stiffening of semiflexible bundle networks.

作者信息

Piechocka Izabela K, Jansen Karin A, Broedersz Chase P, Kurniawan Nicholas A, MacKintosh Fred C, Koenderink Gijsje H

机构信息

FOM Institute AMOLF, 1098 XG Amsterdam, The Netherlands.

出版信息

Soft Matter. 2016 Feb 21;12(7):2145-56. doi: 10.1039/c5sm01992c. Epub 2016 Jan 13.

Abstract

Bundles of polymer filaments are responsible for the rich and unique mechanical behaviors of many biomaterials, including cells and extracellular matrices. In fibrin biopolymers, whose nonlinear elastic properties are crucial for normal blood clotting, protofibrils self-assemble and bundle to form networks of semiflexible fibers. Here we show that the extraordinary strain-stiffening response of fibrin networks is a direct reflection of the hierarchical architecture of the fibrin fibers. We measure the rheology of networks of unbundled protofibrils and find excellent agreement with an affine model of extensible wormlike polymers. By direct comparison with these data, we show that physiological fibrin networks composed of thick fibers can be modeled as networks of tight protofibril bundles. We demonstrate that the tightness of coupling between protofibrils in the fibers can be tuned by the degree of enzymatic intermolecular crosslinking by the coagulation factor XIII. Furthermore, at high stress, the protofibrils contribute independently to the network elasticity, which may reflect a decoupling of the tight bundle structure. The hierarchical architecture of fibrin fibers can thus account for the nonlinearity and enormous elastic resilience characteristic of blood clots.

摘要

聚合物细丝束决定了包括细胞和细胞外基质在内的许多生物材料丰富而独特的力学行为。在纤维蛋白生物聚合物中,其非线性弹性特性对正常血液凝固至关重要,原纤维会自组装并束集形成半柔性纤维网络。在此我们表明,纤维蛋白网络非凡的应变硬化响应是纤维蛋白纤维层次结构的直接体现。我们测量了未束集原纤维网络的流变学特性,并发现其与可伸展类蠕虫聚合物的仿射模型高度吻合。通过与这些数据直接比较,我们表明由粗纤维组成的生理性纤维蛋白网络可被模拟为紧密原纤维束网络。我们证明,纤维中原纤维之间的耦合紧密程度可通过凝血因子 XIII 的酶促分子间交联程度进行调节。此外,在高应力下,原纤维对网络弹性有独立贡献,这可能反映了紧密束结构的解耦。因此,纤维蛋白纤维的层次结构可以解释血凝块的非线性和巨大弹性恢复特性。

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