Danelon Christophe, Suenaga Atsushi, Winterhalter Mathias, Yamato Ichiro
Institut de Pharmacologie et de Biologie Structurale, CNRS-UMR 5089, Universite P. Sabatier, 205 route de Narbonne, 31077 Toulouse, France.
Biophys Chem. 2003 Jul 1;104(3):591-603. doi: 10.1016/s0301-4622(03)00062-0.
Ion current through single outer membrane protein F (OmpF) trimers was recorded and compared to molecular dynamics simulation. Unidirectional insertion was revealed from the asymmetry in channel conductance. Single trimer conductance showed particularly high values at low symmetrical salt solution. The conductance values of various alkali metal ion solutions were proportional to the monovalent cation mobility values in the bulk phase, LiCl<NaCl<KCl<RbCl approximately CsCl, but the conductance differences were quantitatively larger than conductivity differences in bulk solutions. Selectivity measurements at low concentration showed that OmpF channels favored permeation of alkali metal ions over chloride and suggested size preference for smaller cations. These results suggest that there are specific interactions between the permeating cation and charged residues lining the channel walls. This hypothesis was supported by computational study which predicted that monovalent cations bind to Asp113 at low concentration. Here, free energy calculations revealed that the affinity of the alkali metal ions to its binding site increased with their atomic radii, Li(+) approximately Na(+)<K(+) approximately Rb(+) approximately Cs(+). A detailed inspection of both experimental and computational results suggested that stronger binding at the central constriction of the channel increases the translocation rate of cations under applied voltage by increasing their local concentration relative to the bulk solution.
记录通过单个外膜蛋白F(OmpF)三聚体的离子电流,并与分子动力学模拟进行比较。从通道电导的不对称性揭示了单向插入。在低对称盐溶液中,单个三聚体电导显示出特别高的值。各种碱金属离子溶液的电导值与本体相中单价阳离子迁移率值成正比,LiCl<NaCl<KCl<RbCl≈CsCl,但电导差异在数量上大于本体溶液中的电导率差异。低浓度下的选择性测量表明,OmpF通道有利于碱金属离子而非氯离子的渗透,并表明对较小阳离子有尺寸偏好。这些结果表明,渗透阳离子与通道壁内衬的带电残基之间存在特定相互作用。这一假设得到了计算研究的支持,该研究预测单价阳离子在低浓度下与Asp113结合。在此,自由能计算表明,碱金属离子对其结合位点的亲和力随其原子半径增加,Li(+)≈Na(+)<K(+)≈Rb(+)≈Cs(+)。对实验和计算结果的详细检查表明,通道中央收缩处更强的结合通过相对于本体溶液增加阳离子的局部浓度来提高施加电压下阳离子的转运速率。