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Buckling and enforced stretching of bio-filaments

机译:生物丝的屈曲和强制拉伸

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We examine the force needed to extend/compress a bio-filament, a key issue in the study of cytoskeleton mechanics and polymer physics, by considering both the associated stretching and bending deformations. Specifically, closed form relationships are derived to predict the buckling of stiff filaments such as F-actin and microtubules. Our results clearly demonstrate that the maximum force a 2D filament can sustain is higher than the Euler buckling load whereas the force in a 3D filament is always below it, and hence clarify some of the ambiguities in the literature. In addition, analytical expression is also obtained to describe how the extensional force increases when a flexible molecule, like DNA, is stretched close to its contour length, which has been shown to fit a variety of experimental data very well. Our theory provides important corrections/improvements to several well-known existing models.
机译:我们通过考虑相关的拉伸和弯曲变形,研究了延伸/压缩生物丝所需的力,这是细胞骨架力学和聚合物物理学研究中的关键问题。具体而言,得出封闭形式的关系以预测诸如F-肌动蛋白和微管之类的硬丝的屈曲。我们的结果清楚地表明2D灯丝可以承受的最大力高于欧拉屈曲载荷,而3D灯丝中的力始终低于它,因此澄清了文献中的一些歧义。此外,还获得了分析表达式来描述当柔性分子(如DNA)被拉伸到接近其轮廓长度时,拉伸力如何增加,这已被证明非常适合各种实验数据。我们的理论为几种已知的现有模型提供了重要的更正/改进。

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