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Mechanics of F-actin characterized with microfabricated cantilevers.

机译:F-肌动蛋白的力学特征是微加工的悬臂梁。

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摘要

In this report we characterized the longitudinal elasticity of single actin filaments manipulated by novel silicon-nitride microfabricated levers. Single actin filaments were stretched from zero tension to maximal physiological tension, P(0). The obtained length-tension relation was nonlinear in the low-tension range (0-50 pN) with a resultant strain of approximately 0.4-0.6% and then became linear at moderate to high tensions (approximately 50-230 pN). In this region, the stretching stiffness of a single rhodamine-phalloidin-labeled, 1-microm-long F-actin is 34.5 +/- 3.5 pNm. Such a length-tension relation could be characterized by an entropic-enthalpic worm-like chain model, which ascribes most of the energy consumed in the nonlinear portion to overcoming thermal undulations arising from the filament's interaction with surrounding solution and the linear portion to the intrinsic stretching elasticity. By fitting the experimental data with such a worm-like chain model, an estimation of persistence length of approximately 8.75 microm was derived. These results suggest that F-actin is more compliant than previously thought and that thin filament compliance may account for a substantial fraction of the sarcomere's elasticity.
机译:在本报告中,我们表征了由新型氮化硅微制造杠杆操纵的单肌动蛋白丝的纵向弹性。单肌动蛋白丝从零张力拉伸到最大生理张力P(0)。所获得的长度-张力关系在低张力范围(0-50 pN)内是非线性的,产生的应变约为0.4-0.6%,然后在中度到高张力(大约50-230 pN)下变为线性。在该区域中,单个若丹明-鬼笔环肽标记的1微米长的F-肌动蛋白的拉伸刚度为34.5 +/- 3.5 pN / nm。这种长度-张力关系可以通过熵-焓蠕虫状链模型来表征,该模型将非线性部分所消耗的大部分能量归因于克服由细丝与周围溶液的相互作用以及线性部分与本征的相互作用所引起的热波动。拉伸弹性。通过用这种蠕虫状链模型拟合实验数据,得出了大约8.75微米的持久性长度的估计值。这些结果表明,F-肌动蛋白比以前认为的更顺应,细丝顺应性可能占肌节弹性的很大一部分。

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