G. Zifarelli: Istituto di Biofisica, CNR, Via De Marini 6, I-16149 Genova, Italy.
J Physiol. 2013 Dec 1;591(23):5879-93. doi: 10.1113/jphysiol.2013.260240. Epub 2013 Oct 7.
ClC-5 is a 2Cl(-)/1H(+) antiporter highly expressed in endosomes of proximal tubule cells. It is essential for endocytosis and mutations in ClC-5 cause Dent's disease, potentially leading to renal failure. However, the physiological role of ClC-5 is still unclear. One of the main issues is whether the strong rectification of ClC-5 currents observed in heterologous systems, with currents elicited only at positive voltages, is preserved in vivo and what is the origin of this rectification. In this work we identified a ClC-5 mutation, D76H, which, besides the typical outward currents of the wild-type (WT), shows inward tail currents at negative potentials that allow the estimation of the reversal of ClC-5 currents for the first time. A detailed analysis of the dependence of these inward tail currents on internal and external pH and [Cl(-)] shows that they are generated by a coupled transport of Cl(-) and H(+) with a 2 : 1 stoichiometry. From this result we conclude that the inward tail currents are caused by a gating mechanism that regulates ClC-5 transport activity and not by a major alteration of the transport mechanism itself. This implies that the strong rectification of the currents of WT ClC-5 is at least in part caused by a gating mechanism that activates the transporter at positive potentials. These results elucidate the biophysical properties of ClC-5 and contribute to the understanding of its physiological role.
ClC-5 是一种 2Cl(-)/1H(+)反向转运体,在近端肾小管细胞的内体中高度表达。它对于内吞作用是必需的,ClC-5 的突变导致 Dent 病,可能导致肾衰竭。然而,ClC-5 的生理作用仍不清楚。其中一个主要问题是,在异源系统中观察到的 ClC-5 电流的强烈整流,即在正电压下才会产生电流,是否在体内得到保留,以及这种整流的起源是什么。在这项工作中,我们鉴定了一个 ClC-5 突变体 D76H,它除了具有野生型(WT)的典型外向电流外,还在负电位下显示内向尾电流,这使得首次能够估计 ClC-5 电流的反转。对内向尾电流对内、外 pH 值和 [Cl(-)]的依赖性的详细分析表明,它们是由 Cl(-)和 H(+)的偶联转运产生的,其比例为 2:1。从这个结果我们可以得出结论,内向尾电流是由一种门控机制引起的,这种门控机制调节 ClC-5 的转运活性,而不是转运机制本身的重大改变。这意味着 WT ClC-5 电流的强烈整流至少部分是由一种门控机制引起的,该机制在正电位下激活转运体。这些结果阐明了 ClC-5 的生物物理特性,并有助于理解其生理作用。