Bordin J R, Diehl A, Barbosa M C, Levin Y
Instituto de Física, Universidade Federal do Rio Grande do Sul, Porto Alegre, RS, Brazil.
Phys Rev E Stat Nonlin Soft Matter Phys. 2012 Mar;85(3 Pt 1):031914. doi: 10.1103/PhysRevE.85.031914. Epub 2012 Mar 26.
We introduce an implicit solvent Molecular Dynamics approach for calculating ionic fluxes through narrow nanopores and transmembrane channels. The method relies on a dual-control-volume grand-canonical molecular dynamics (DCV-GCMD) simulation and the analytical solution for the electrostatic potential inside a cylindrical nanopore recently obtained by Levin [Europhys. Lett. 76, 163 (2006)]. The theory is used to calculate the ionic fluxes through an artificial transmembrane channel which mimics the antibacterial gramicidin A channel. Both current-voltage and current-concentration relations are calculated under various experimental conditions. We show that our results are comparable to the characteristics associated to the gramicidin A pore, especially the existence of two binding sites inside the pore and the observed saturation in the current-concentration profiles.
我们介绍了一种用于计算通过狭窄纳米孔和跨膜通道的离子通量的隐式溶剂分子动力学方法。该方法依赖于双控制体积巨正则分子动力学(DCV-GCMD)模拟以及Levin最近获得的圆柱形纳米孔内静电势的解析解[《欧洲物理快报》76, 163 (2006)]。该理论用于计算通过模拟抗菌短杆菌肽A通道的人工跨膜通道的离子通量。在各种实验条件下计算了电流-电压和电流-浓度关系。我们表明,我们的结果与短杆菌肽A孔相关的特性相当,特别是孔内存在两个结合位点以及电流-浓度曲线中观察到的饱和度。