Zienkiewicz Centre for Computational Engineering, College of Engineering, Swansea University, Bay Campus, Fabian Way, Swansea, Wales, SA1 8EN, UK.
Biomech Model Mechanobiol. 2018 Apr;17(2):339-349. doi: 10.1007/s10237-017-0964-9. Epub 2017 Oct 3.
Quasi-one-dimensional microtubules (MTs) in cells enjoy high axial rigidity but large transverse flexibility due to the inter-protofilament (PF) sliding. This study aims to explore the structure-property relation for MTs and examine the relevance of the beam theories to their unique features. A molecular structural mechanics (MSM) model was used to identify the origin of the inter-PF sliding and its role in bending and vibration of MTs. The beam models were then fitted to the MSM to reveal how they cope with the distinct mechanical responses induced by the inter-PF sliding. Clear evidence showed that the inter-PF sliding is due to the soft inter-PF bonds and leads to the length-dependent bending stiffness. The Euler beam theory is found to adequately describe MT deformation when the inter-PF sliding is largely prohibited. Nevertheless, neither shear deformation nor the nonlocal effect considered in the 'more accurate' beam theories can fully capture the effect of the inter-PF sliding. This reflects the distinct deformation mechanisms between an MT and its equivalent continuous body.
准一维微管(MTs)在细胞中具有很高的轴向刚性,但由于原丝间的滑动,其横向柔性较大。本研究旨在探索 MTs 的结构-性能关系,并检验梁理论与它们独特特征的相关性。使用分子结构力学(MSM)模型来确定原丝间滑动的起源及其在 MTs 的弯曲和振动中的作用。然后将梁模型拟合到 MSM 中,以揭示它们如何应对由原丝间滑动引起的独特力学响应。有明确的证据表明,原丝间滑动是由于原丝间的弱键导致的,这会导致长度依赖性弯曲刚度。当原丝间滑动受到很大限制时,欧拉梁理论能够很好地描述 MT 的变形。然而,无论是剪切变形还是“更准确”的梁理论中考虑的非局部效应,都不能完全捕捉到原丝间滑动的影响。这反映了 MT 与其等效连续体之间的明显变形机制。