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镍离子对非洲爪蟾卵母细胞中表达的非洲爪蟾和大鼠上皮钠通道的相反作用。

Opposite effects of Ni2+ on Xenopus and rat ENaCs expressed in Xenopus oocytes.

作者信息

Cucu Dana, Simaels Jeannine, Eggermont Jan, Van Driessche Willy, Zeiske Wolfgang

机构信息

Laboratory of Physiology, Department of Molecular Cell Biology, Catholic University of Leuven, K. U. Leuven, Campus Gasthuisberg O & N, Herestraat 49, Box 802, B-3000 Leuven, Belgium.

出版信息

Am J Physiol Cell Physiol. 2005 Oct;289(4):C946-58. doi: 10.1152/ajpcell.00419.2004. Epub 2005 Jun 8.

Abstract

The epithelial Na+ channel (ENaC) is modulated by various extracellular factors, including Na+, organic or inorganic cations, and serine proteases. To identify the effect of the divalent Ni2+ cation on ENaCs, we compared the Na+ permeability and amiloride kinetics of Xenopus ENaCs (xENaCs) and rat ENaCs (rENaCs) heterologously expressed in Xenopus oocytes. We found that the channel cloned from the kidney of the clawed toad Xenopus laevis [wild-type (WT) xENaC] was stimulated by external Ni2+, whereas the divalent cation inhibited the channel cloned from the rat colon (WT rENaC). The kinetics of amiloride binding were determined using noise analysis of blocker-induced fluctuation in current adapted for the transoocyte voltage-clamp method, and Na+ conductance was assessed using the dual electrode voltage-clamp (TEVC) technique. The inhibitory effect of Ni2+ on amiloride binding is not species dependent, because Ni2+ decreased the affinity (mainly reducing the association rate constant) of the blocker in both species in competition with Na+. Importantly, using the TEVC method, we found a prominent difference in channel conductance at hyperpolarizing voltage pulses. In WT xENaCs, the initial ohmic current response was stimulated by Ni2+, whereas the secondary voltage-activated current component remained unaffected. In WT rENaCs, only a voltage-dependent block by Ni2+ was obtained. To further study the origin of the xENaC stimulation by Ni2+, and based on the rationale of the well-known high affinity of Ni2+ for histidine residues, we designed alpha-subunit mutants of xENaCs by substituting histidines that were expressed in oocytes, together with WT beta- and gamma-subunits. Changing His215 to Asp in one putative amiloride-binding domain (WYRFHY) in the extracellular loop between Na+ channel membrane segments M1 and M2 had no influence on the stimulatory effect of Ni2+, and neither did complete deletion of this segment. Next, we mutated His416 flanked by His411 and Cys417, a unique site for possible heavy metal ion chelation, and, with this quality, most proximal (approximately 100 amino acids upstream of the second putative amiloride binding site at the pore entrance), was found localized at M2. Replacing His416 with arginine, aspartate, tyrosine, and alanine clearly affected amiloride binding in all cases, as well as Na+ conductance, as expressed in the xENaC current-voltage relationship, especially with regard to aspartate and tyrosine. However, similarly to those obtained with the WYRFHY stretch, none of these mutations could either abolish the stimulating effect of Ni2+ or reverse it to an inhibitory type.

摘要

上皮钠离子通道(ENaC)受多种细胞外因子调节,包括钠离子、有机或无机阳离子以及丝氨酸蛋白酶。为了确定二价镍离子(Ni2+)对ENaC的影响,我们比较了在非洲爪蟾卵母细胞中异源表达的非洲爪蟾ENaC(xENaC)和大鼠ENaC(rENaC)的钠离子通透性和氨氯地平动力学。我们发现,从非洲爪蟾(Xenopus laevis)肾脏克隆的通道[野生型(WT)xENaC]受到细胞外Ni2+的刺激,而二价阳离子抑制了从大鼠结肠克隆的通道(WT rENaC)。使用适用于跨卵母细胞电压钳法的阻断剂诱导电流波动的噪声分析来确定氨氯地平结合的动力学,并使用双电极电压钳(TEVC)技术评估钠离子电导。Ni2+对氨氯地平结合的抑制作用不依赖于物种,因为在与钠离子竞争时,Ni2+降低了两种物种中阻断剂的亲和力(主要降低结合速率常数)。重要的是,使用TEVC方法,我们发现在超极化电压脉冲下通道电导存在显著差异。在WT xENaC中,初始欧姆电流响应受到Ni2+的刺激,而次级电压激活电流成分保持不变。在WT rENaC中,仅获得了Ni2+的电压依赖性阻断。为了进一步研究Ni2+对xENaC刺激的起源,并基于Ni2+对组氨酸残基具有众所周知的高亲和力这一原理,我们通过替换在卵母细胞中表达的组氨酸设计了xENaC的α亚基突变体,以及WT β和γ亚基。将位于钠离子通道膜段M1和M2之间细胞外环中一个假定的氨氯地平结合结构域(WYRFHY)中的His215替换为Asp对Ni2+的刺激作用没有影响,该段的完全缺失也没有影响。接下来,我们对His416进行了突变,其两侧是His411和Cys417,这是一个可能的重金属离子螯合的独特位点,并且具有这种特性,它是最靠近(在孔入口处第二个假定的氨氯地平结合位点上游约100个氨基酸)的,位于M2。在所有情况下,用精氨酸、天冬氨酸、酪氨酸和丙氨酸替换His416均明显影响氨氯地平结合以及钠离子电导,如在xENaC电流-电压关系中所表达的,尤其是对于天冬氨酸和酪氨酸。然而,与用WYRFHY片段获得的结果类似,这些突变均不能消除Ni2+的刺激作用或将其逆转至抑制类型。

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