Satarić M V, Ilić D I, Ralević N, Tuszynski Jack Adam
Faculty of Technical Sciences, University of Novi Sad, Novi Sad, Serbia.
Eur Biophys J. 2009 Jun;38(5):637-47. doi: 10.1007/s00249-009-0421-5. Epub 2009 Mar 4.
Microtubules (MTs) are important cytoskeletal polymers engaged in a number of specific cellular activities including the traffic of organelles using motor proteins, cellular architecture and motility, cell division and a possible participation in information processing within neuronal functioning. How MTs operate and process electrical information is still largely unknown. In this paper we investigate the conditions enabling MTs to act as electrical transmission lines for ion flows along their lengths. We introduce a model in which each tubulin dimer is viewed as an electric element with a capacitive, inductive and resistive characteristics arising due to polyelectrolyte nature of MTs. Based on Kirchhoff's laws taken in the continuum limit, a nonlinear partial differential equation is derived and analyzed. We demonstrate that it can be used to describe the electrostatic potential coupled to the propagating localized ionic waves.
微管(MTs)是重要的细胞骨架聚合物,参与许多特定的细胞活动,包括利用驱动蛋白运输细胞器、细胞结构与运动、细胞分裂以及可能参与神经元功能中的信息处理。微管如何运作和处理电信息在很大程度上仍然未知。在本文中,我们研究了使微管能够作为离子沿其长度流动的电传输线的条件。我们引入了一个模型,其中每个微管蛋白二聚体被视为一个具有电容、电感和电阻特性的电学元件,这些特性是由微管的聚电解质性质产生的。基于连续极限下的基尔霍夫定律,推导并分析了一个非线性偏微分方程。我们证明它可用于描述与传播的局部离子波耦合的静电势。