Gao Yuanwen, Lei Fang-Ming
Key Laboratory of Mechanics on Western Disaster and Environment, Ministry of Education, Department of Mechanics and Engineering Science, College of Civil Engineering and Mechanics, Lanzhou University, Lanzhou, PR China.
Biochem Biophys Res Commun. 2009 Sep 25;387(3):467-71. doi: 10.1016/j.bbrc.2009.07.042. Epub 2009 Jul 15.
Based on the nonlocal elastic theory, small scale effects are considered in the investigation of the mechanical properties of protein microtubules. A new prediction formula for the persistence lengths of microtubules with the consideration of the small scale effect is presented. Subsequently, the buckling of microtubules is studied based on a nonlocal elastic beam model. The predicted results of our model indicate that the length-dependence of persistence length is related not only to the shear terms, but also to the small scale effect. The Eular beam model, which is always considered unable to explain the length-dependence of microtubules, can capture the length-dependence of the persistence length of microtubules with the consideration of the small scale effect. The elastic buckling behaviors of microtubules in viscoelastic surrounding cytoplasm are also considered using the nonlocal Timoshenko beam model in this paper, and the results indicate that the small scale effect of microtubules also plays an important role in the buckling of microtubules.
基于非局部弹性理论,在研究蛋白质微管的力学性能时考虑了小尺度效应。提出了一种考虑小尺度效应的微管持久长度的新预测公式。随后,基于非局部弹性梁模型研究了微管的屈曲。我们模型的预测结果表明,持久长度的长度依赖性不仅与剪切项有关,还与小尺度效应有关。欧拉梁模型通常被认为无法解释微管的长度依赖性,但考虑小尺度效应后,它可以捕捉微管持久长度的长度依赖性。本文还使用非局部铁木辛柯梁模型考虑了微管在粘弹性周围细胞质中的弹性屈曲行为,结果表明微管的小尺度效应在微管的屈曲中也起着重要作用。