Shrivastava Rajan, Ghosh Subhendu
Department of Biophysics, University of Delhi South Campus, New Delhi 110021, India.
ACS Omega. 2021 Mar 11;6(11):7544-7557. doi: 10.1021/acsomega.0c06061. eCollection 2021 Mar 23.
Ion channels self-organize on cellular and organelle membranes as clusters and mutually modulate their gating behavior. It has been reported that the efficient information transfer is achieved by cooperative clustering of ion channels. To address the origin and nature of collective dynamics in ion channel clusters, a statistical mechanical model, namely, the Zimm-Bragg-type model in two dimensions with unequal weight distribution in channel-channel interactions, has been proposed. Nearest neighbor interaction along with next-nearest neighbor interaction has been considered, assuming symmetric spatial organization. The multichannel bilayer electrophysiology recordings of the voltage-dependent anion channel (VDAC) from rat brain mitochondria have been analyzed in order to test and further extend the model. The model successfully describes the multichannel gating behavior and self-organization of the VDAC cluster.
离子通道在细胞膜和细胞器膜上自组织形成簇,并相互调节其门控行为。据报道,离子通道的协同聚集可实现高效的信息传递。为了探究离子通道簇中集体动力学的起源和本质,人们提出了一种统计力学模型,即二维的齐姆-布拉格型模型,该模型在通道-通道相互作用中具有不等权重分布。考虑了最近邻相互作用以及次近邻相互作用,并假设其空间组织是对称的。为了测试并进一步扩展该模型,对大鼠脑线粒体电压依赖性阴离子通道(VDAC)的多通道双层电生理记录进行了分析。该模型成功地描述了VDAC簇的多通道门控行为和自组织现象。