Hanwell David, Ishikawa Toru, Saleki Reza, Rotin Daniela
Hospital for Sick Children and the Department of Biochemistry, University of Toronto, Toronto, Ontario M5G 1X8, Canada.
J Biol Chem. 2002 Mar 22;277(12):9772-9. doi: 10.1074/jbc.M110904200. Epub 2001 Dec 28.
The apically located epithelial Na(+) channel (alphabetagamma-ENaC) plays a key role in the regulation of salt and fluid transport in the kidney and other epithelia, yet its mode of trafficking to the plasma membrane and its cell surface stability in mammalian cells are poorly understood. Because the expression of ENaC in native tissues/cells is very low, we generated epithelial Madin-Darby canine kidney (MDCK) cells stably expressing alphabetagamma-ENaC, where each subunit is tagged differentially at the intracellular C terminus and the beta-subunit is also Myc-tagged at the ectodomain (alpha(HA)beta(Myc,T7)gamma(FLAG)). ENaC expression in these cells was verified by immunoblotting with antibodies to the tags, and patch clamp analysis has confirmed that the tagged channel is functional. Moreover, using electron microscopy, we demonstrated apical, but not basal, membrane localization of ENaC in these cells. The glycosylation pattern of the intracellular pool of ENaC revealed peptide N-glycosidase F and endoglycosidase H sensitivity. Surprisingly, the cell surface pool of ENaC, analyzed by surface biotinylation, was also core glycosylated and lacked detectable endoglycosidase H-resistant channels. Extraction of the channel from cells in Triton X-100 demonstrated that both intracellular and cell surface pools of ENaC are largely soluble. Moreover, floatation assays to analyze the presence of ENaC in lipid rafts showed that both intracellular and cell surface pools of this channel are not associated with rafts. We have shown previously that the total cellular pool of ENaC is turned over rapidly (t(1/2) approximately 1-2 h). Using cycloheximide treatment and surface biotinylation we now demonstrate that the cell surface pool of ENaC has a similarly short half-life (t(1/2) approximately 1 h), unlike the long half-life reported recently for the Xenopus A6 cells. Collectively, these results help elucidate key aspects of ENaC trafficking and turnover rates in mammalian kidney epithelial cells.
位于顶端的上皮钠通道(alphabetagamma-ENaC)在肾脏和其他上皮组织中盐和液体转运的调节中起关键作用,但其在哺乳动物细胞中转运至质膜的方式及其细胞表面稳定性仍知之甚少。由于ENaC在天然组织/细胞中的表达非常低,我们构建了稳定表达alphabetagamma-ENaC的上皮性Madin-Darby犬肾(MDCK)细胞,其中每个亚基在细胞内C末端进行了不同标记,并且β亚基在外结构域也用Myc标记(alpha(HA)beta(Myc,T7)gamma(FLAG))。通过用针对这些标签的抗体进行免疫印迹验证了这些细胞中ENaC的表达,膜片钳分析证实标记的通道具有功能。此外,使用电子显微镜,我们证明了这些细胞中ENaC定位于顶端膜而非基底膜。ENaC细胞内池的糖基化模式显示对肽N-糖苷酶F和内切糖苷酶H敏感。令人惊讶的是,通过表面生物素化分析的ENaC细胞表面池也是核心糖基化的,并且缺乏可检测到的对内切糖苷酶H有抗性的通道。用Triton X-100从细胞中提取通道表明,ENaC的细胞内池和细胞表面池在很大程度上是可溶的。此外,用于分析脂筏中ENaC存在的漂浮试验表明,该通道的细胞内池和细胞表面池均与脂筏无关。我们之前已经表明,ENaC的总细胞池周转迅速(半衰期约为1-2小时)。使用放线菌酮处理和表面生物素化,我们现在证明ENaC的细胞表面池具有类似的短半衰期(半衰期约为1小时),这与最近报道的非洲爪蟾A6细胞的长半衰期不同。总的来说,这些结果有助于阐明哺乳动物肾上皮细胞中ENaC转运和周转率的关键方面。