Mishra Pankaj Kumar, Kunwar Ambarish, Mukherji Sutapa, Chowdhury Debashish
Department of Physics, Indian Institute of Technology, Kanpur 208016, India.
Phys Rev E Stat Nonlin Soft Matter Phys. 2005 Nov;72(5 Pt 1):051914. doi: 10.1103/PhysRevE.72.051914. Epub 2005 Nov 9.
Microtubules are stiff filamentary proteins that constitute an important component of the cytoskeleton of cells. These are known to exhibit a dynamic instability. A steadily growing microtubule can suddenly start depolymerizing very rapidly; this phenomenon is known as a "catastrophe." However, often a shrinking microtubule is "rescued" and starts polymerizing again. Here we develop a model for the polymerization-depolymerization dynamics of microtubules in the presence of catastrophe-suppressing drugs. Solving the dynamical equations in the steady state, we derive exact analytical expressions for the length distributions of the microtubules tipped with drug-bound tubulin subunits as well as those of the microtubules, in the growing and shrinking phases, tipped with drug-free pure tubulin subunits. We also examine the stability of the steady-state solutions.
微管是构成细胞细胞骨架重要组成部分的刚性丝状蛋白。已知这些微管表现出动态不稳定性。一根稳定生长的微管可能会突然开始非常迅速地解聚;这种现象被称为“灾难”。然而,通常一根正在收缩的微管会被“拯救”并再次开始聚合。在这里,我们建立了一个在存在抑制灾难药物的情况下微管聚合 - 解聚动力学的模型。通过求解稳态下的动力学方程,我们推导出了由结合药物的微管蛋白亚基末端的微管以及在生长和收缩阶段由无药物的纯微管蛋白亚基末端的微管的长度分布的确切解析表达式。我们还研究了稳态解的稳定性。