首页> 外文期刊>The Biochemical Journal >Expression and targeting to the plasma membrane of xClC-K, a chloride channel specifically expressed in distinct tubule segments of Xenopus laevis kidney.
【24h】

Expression and targeting to the plasma membrane of xClC-K, a chloride channel specifically expressed in distinct tubule segments of Xenopus laevis kidney.

机译:表达并靶向xClC-K的质膜,xClC-K是在非洲爪蟾肾脏不同小管节中特异性表达的氯化物通道。

获取原文
获取原文并翻译 | 示例
           

摘要

ClC-K channels are Cl- channels specifically expressed in vertebrate kidneys. Although their heterologous functional expression is still controversial, indirect evidence points to them as major factors involved in Cl- reabsorption in the nephron. We cloned xClC-K, an amphibian (Xenopus) homologue of mammalian ClC-K. The cDNA encodes a 77 kDa protein presenting 62% similarity with human ClC-Kb. The protein is monoglycosylated and is expressed primarily in the Xenopus kidney. It is localized in the basolateral membranes of proximal convoluted tubules of the nephron and in the apical region of the diluting segments. Heterologous expression of xClC-K in HEK-293 cells showed that the full-length protein is glycosylated and targeted to the cell membrane, but no associated Cl- current could be observed with the patch-clamp recording technique. N-glycosylation of both the native kidney channel and the recombinant protein expressed in HEK-293 conferred on them anomalous behaviour in denaturing PAGE, which is indicative of strong interactions at the extracellular side of the plasma membrane. The expression of ClC-K channels in both mesonephric and metanephric kidneys will permit further comparative physiological studies of Cl- permeabilities at the molecular level.
机译:ClC-K通道是在脊椎动物肾脏中特异性表达的Cl-通道。尽管它们的异源功能表达仍存在争议,但间接证据表明它们是参与肾单位中Cl-重吸收的主要因素。我们克隆了xClC-K,这是哺乳动物ClC-K的两栖动物(非洲爪蟾)的同源物。 cDNA编码一个77 kDa的蛋白质,与人C1C-Kb的相似性为62%。该蛋白质被单糖基化,主要在非洲爪蟾肾脏中表达。它位于肾的近曲小管的基底外侧膜和稀释段的顶端区域。 xClC-K在HEK-293细胞中的异源表达表明,全长蛋白质被糖基化并靶向细胞膜,但膜片钳记录技术未观察到相关的Cl-电流。天然肾脏通道和HEK-293中表达的重组蛋白的N-糖基化赋予它们变性PAGE的异常行为,这表明在质膜的细胞外侧发生强相互作用。中肾和后肾中ClC-K通道的表达将允许在分子水平上对Cl-渗透性进行进一步的比较生理研究。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号