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Cation selective glass electrodes and their mode of operation.阳离子选择性玻璃电极及其工作模式。
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The structure of the potassium channel: molecular basis of K+ conduction and selectivity.钾通道的结构:K⁺传导与选择性的分子基础。
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Ion conduction through C-type inactivated Shaker channels.离子通过C型失活的Shaker通道的传导。
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Point mutations in alpha bENaC regulate channel gating, ion selectivity, and sensitivity to amiloride.α bENaC中的点突变可调节通道门控、离子选择性及对氨氯吡咪的敏感性。
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Control of ion flux and selectivity by negatively charged residues in the outer mouth of rat sodium channels.大鼠钠通道外口带负电荷残基对离子通量和选择性的控制
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Valence selectivity of the gramicidin channel: a molecular dynamics free energy perturbation study.短杆菌肽通道的价态选择性:分子动力学自由能微扰研究
Biophys J. 1996 Dec;71(6):3177-85. doi: 10.1016/S0006-3495(96)79511-5.
8
On the structural basis for ionic selectivity among Na+, K+, and Ca2+ in the voltage-gated sodium channel.关于电压门控钠通道中Na+、K+和Ca2+离子选择性的结构基础。
Biophys J. 1996 Dec;71(6):3110-25. doi: 10.1016/S0006-3495(96)79505-X.
9
Ab initio molecular dynamics study of proton transfer in a polyglycine analog of the ion channel gramicidin A.离子通道短杆菌肽A的聚甘氨酸类似物中质子转移的从头算分子动力学研究。
Biophys J. 1996 Sep;71(3):1172-8. doi: 10.1016/S0006-3495(96)79321-9.
10
A semi-microscopic Monte Carlo study of permeation energetics in a gramicidin-like channel: the origin of cation selectivity.类短杆菌肽通道渗透能学的半微观蒙特卡洛研究:阳离子选择性的起源
Biophys J. 1996 Jan;70(1):121-34. doi: 10.1016/S0006-3495(96)79554-1.

生物膜离子通道选择性的物理起源。

Physical origin of selectivity in ionic channels of biological membranes.

作者信息

Laio A, Torre V

机构信息

Istituto Nazionale per la Fisica della Materia, Unita' di Trieste, Trieste, Italy.

出版信息

Biophys J. 1999 Jan;76(1 Pt 1):129-48. doi: 10.1016/S0006-3495(99)77184-5.

DOI:10.1016/S0006-3495(99)77184-5
PMID:9876129
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1302506/
Abstract

This paper shows that the selectivity properties of monovalent cation channels found in biological membranes can originate simply from geometrical properties of the inner core of the channel without any critical contribution from electrostatic interactions between the permeating ions and charged or polar groups. By using well-known techniques of statistical mechanics, such as the Langevin equations and Kramer theory of reaction rates, a theoretical equation is provided relating the permeability ratio PB/PA between ions A and B to simple physical properties, such as channel geometry, thermodynamics of ion hydration, and electrostatic interactions between the ion and charged (or polar) groups. Diffusive corrections and recrossing rates are also considered and evaluated. It is shown that the selectivity found in usual K+, gramicidin, Na+, cyclic nucleotide gated, and end plate channels can be explained also in the absence of any charged or polar group. If these groups are present, they significantly change the permeability ratio only if the ion at the selectivity filter is in van der Waals contact with them, otherwise these groups simply affect the channel conductance, lowering the free energy barrier of the same amount for the two ions, thus explaining why single channel conductance, as it is experimentally observed, can be very different in channels sharing the same selectivity sequence. The proposed theory also provides an estimate of channel minimum radius for K+, gramicidin, Na+, and cyclic nucleotide gated channels.

摘要

本文表明,生物膜中发现的单价阳离子通道的选择性特性可能仅仅源于通道内核的几何特性,而渗透离子与带电或极性基团之间的静电相互作用并无关键贡献。通过运用统计力学的知名技术,如朗之万方程和反应速率的克莱默理论,给出了一个理论方程,将离子A和B之间的渗透率比PB/PA与简单的物理性质联系起来,如通道几何形状、离子水化热力学以及离子与带电(或极性)基团之间的静电相互作用。还考虑并评估了扩散校正和再穿越速率。结果表明,在通常的钾离子通道、短杆菌肽通道、钠离子通道、环核苷酸门控通道和终板通道中发现的选择性,在不存在任何带电或极性基团的情况下也能得到解释。如果存在这些基团,只有当选择性过滤器处的离子与它们处于范德华接触时,它们才会显著改变渗透率比,否则这些基团只会影响通道电导,使两种离子的自由能垒降低相同的量,从而解释了为什么在具有相同选择性序列的通道中,实验观察到的单通道电导可能非常不同。所提出的理论还给出了钾离子通道、短杆菌肽通道、钠离子通道和环核苷酸门控通道的通道最小半径估计值。