Ngo Van, Stefanovski Darko, Haas Stephan, Farley Robert A
Department of Physics and Astronomy, University of Southern California, Los Angeles, California, United States of America.
Department of Biomedical Sciences, Cedars Sinai Medical Center, Los Angeles, California, United States of America ; Department of Physiology and Biophysics, University of Southern California, Keck School of Medicine, Los Angeles, California, United States of America.
PLoS One. 2014 Jan 17;9(1):e86079. doi: 10.1371/journal.pone.0086079. eCollection 2014.
The ability of biological ion channels to conduct selected ions across cell membranes is critical for the survival of both animal and bacterial cells. Numerous investigations of ion selectivity have been conducted over more than 50 years, yet the mechanisms whereby the channels select certain ions and reject others are not well understood. Here we report a new application of Jarzynski's Equality to investigate the mechanism of ion selectivity using non-equilibrium molecular dynamics simulations of Na(+) and K(+) ions moving through the KcsA channel. The simulations show that the selectivity filter of KcsA adapts and responds to the presence of the ions with structural rearrangements that are different for Na(+) and K(+). These structural rearrangements facilitate entry of K(+) ions into the selectivity filter and permeation through the channel, and rejection of Na(+) ions. A mechanistic model of ion selectivity by this channel based on the results of the simulations relates the structural rearrangement of the selectivity filter to the differential dehydration of ions and multiple-ion occupancy and describes a mechanism to efficiently select and conduct K(+). Estimates of the K(+)/Na(+) selectivity ratio and steady state ion conductance for KcsA from the simulations are in good quantitative agreement with experimental measurements. This model also accurately describes experimental observations of channel block by cytoplasmic Na(+) ions, the "punch through" relief of channel block by cytoplasmic positive voltages, and is consistent with the knock-on mechanism of ion permeation.
生物离子通道跨细胞膜传导特定离子的能力对于动物细胞和细菌细胞的存活至关重要。五十多年来,人们对离子选择性进行了大量研究,但通道选择某些离子并排斥其他离子的机制仍未得到很好的理解。在此,我们报告了雅尔津斯基等式的一种新应用,利用非平衡分子动力学模拟Na(+)和K(+)离子通过KcsA通道来研究离子选择性机制。模拟结果表明,KcsA通道的选择性过滤器会通过结构重排来适应并响应离子的存在,而这种结构重排对于Na(+)和K(+)是不同的。这些结构重排促进了K(+)离子进入选择性过滤器并通过通道渗透,同时排斥了Na(+)离子。基于模拟结果,该通道离子选择性的机制模型将选择性过滤器的结构重排与离子的差异脱水以及多离子占据联系起来,并描述了一种有效选择和传导K(+)的机制。模拟得出的KcsA通道的K(+)/Na(+)选择性比率和稳态离子电导率估计值与实验测量结果在定量上吻合良好。该模型还准确描述了细胞质Na(+)离子对通道的阻断、细胞质正电压对通道阻断的“穿通”缓解等实验观察结果,并且与离子渗透的连锁机制一致。