Alcaraz Antonio, Ramírez Patricio, García-Giménez Elena, López M Lidón, Andrio Andreu, Aguilella Vicente M
Department of Experimental Sciences, Biophysics Unit, University Jaume I, P.O. Box 8029, E-12080 Castellón, Spain.
J Phys Chem B. 2006 Oct 26;110(42):21205-9. doi: 10.1021/jp063204w.
We report pH-dependent electrochemical rectification in a protein ion channel (the bacterial porin OmpF) reconstituted on a planar phospholipid membrane. The measurements performed at single-channel level show that the electric current is controlled by the protein fixed charge and it can be tuned by adjusting the local pH. Under highly asymmetric pH conditions, the channel behaves like a liquid diode. Unlike other nanofluidic devices that display also asymmetric conductance, here the microscopic charge distribution of the system can be explored by using the available high-resolution (2.4 A) channel crystallographic structure. Continuum electrostatics calculations confirm the hypothesized bipolar structure of the system. The selective titration of the channel residues is identified as the underlying physicochemical mechanism responsible for current rectification.
我们报道了在平面磷脂膜上重构的蛋白质离子通道(细菌孔蛋白OmpF)中pH依赖性的电化学整流现象。在单通道水平上进行的测量表明,电流由蛋白质固定电荷控制,并且可以通过调节局部pH来调节。在高度不对称的pH条件下,该通道表现得像一个液体二极管。与其他也显示不对称电导的纳米流体装置不同,这里可以利用现有的高分辨率(2.4埃)通道晶体结构来探索系统的微观电荷分布。连续介质静电学计算证实了该系统假设的双极结构。通道残基的选择性滴定被确定为导致电流整流的潜在物理化学机制。