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Softness strength and self-repair in intermediate filament networks

机译:中间长丝网络的柔软度强度和自我修复

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摘要

One cellular function of intermediate filaments is to provide cells with compliance to small deformations while strengthening them when large stresses are applied. How IFs accomplish this mechanical role is revealed by recent studies of the elastic properties of single IF protein polymers and by viscoelastic characterization of the networks they form. IFs are unique among cytoskeletal filaments in withstanding large deformations. Single filaments can stretch to more than 3 times their initial length before breaking, and gels of IF withstand strains greater than 100% without damage. Even after mechanical disruption of gels formed by crossbridged neurofilaments, the elastic modulus of these gels rapidly recovers under conditions where gels formed by actin filaments are irreversibly ruptured. The polyelectrolyte properties of IFs may enable crossbridging by multivalent counterions, but identifying the mechanisms by which IFs link into bundles and networks in vivo remains a challenge.
机译:中间细丝的一种细胞功能是在施加较大应力时为细胞提供顺应小变形的能力,同时增强它们。最近对单个IF蛋白聚合物的弹性特性的研究以及它们形成的网络的粘弹性表征揭示了IF如何完成这种机械作用。 IF在细胞骨架细丝中是独特的,可以承受较大的变形。断裂前,单根细丝可拉伸至其初始长度的三倍以上,IF凝胶可承受大于100%的应变而不会损坏。甚至在机械破坏了由交叉桥联的神经丝形成的凝胶之后,在由肌动蛋白丝形成的凝胶不可逆地破裂的条件下,这些凝胶的弹性模量也迅速恢复。 IF的聚电解质性质可以通过多价抗衡离子实现交叉桥联,但是鉴定IF在体内连接成束和网络的机制仍然是一个挑战。

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