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NHERF1的敲低增强了温度挽救的DeltaF508 CFTR从人气道细胞表面的降解。

Knockdown of NHERF1 enhances degradation of temperature rescued DeltaF508 CFTR from the cell surface of human airway cells.

作者信息

Kwon Sang-Ho, Pollard Harvey, Guggino William B

机构信息

Department of Physiology, School of Medicine, The Johns Hopkins University, Baltimore, MD 21205, USA.

出版信息

Cell Physiol Biochem. 2007;20(6):763-72. doi: 10.1159/000110436.

Abstract

DeltaF508 CFTR can be functionally restored in the plasma membrane by exposure of the cell to lower temperature. However, restored DeltaF508 CFTR has a much shorter half-life than normal. We studied whether NHERF1, which binds to the PDZ motif of CFTR, might be a critical mediator in the turnover of DeltaF508 CFTR from the cell surface. We used RNAi to reduce the expression of NHERF1 in human airway epithelial cells. Knockdown of NHERF1 reversibly reduces surface expression of WT-CFTR without altering its total expression. As expected, temperature correction increased mature C band DeltaF508 CFTR (rDeltaF508) but unexpectedly allowed immature B band of rDeltaF508 to traffic to the cell surface. Both surface and total expression of rDeltaF508 in NHERF1 knockdown cells were reduced and degradation of surface localized rDeltaF508 was even faster in NHERF1 knockdown cells. Proteasomal and lysosomal inhibitor treatments led to a significant decrease in the accelerated degradation of surface rDeltaF508 in NHERF1 knockdown cells. These results indicate that NHERF1 plays a role in the turnover of CFTR at the cell surface, and that rDeltaF508 CFTR at the cell surface remains highly susceptible to degradation.

摘要

通过将细胞暴露于较低温度,ΔF508囊性纤维化跨膜传导调节因子(CFTR)可在质膜中实现功能恢复。然而,恢复后的ΔF508 CFTR半衰期比正常情况短得多。我们研究了与CFTR的PDZ基序结合的NHERF1是否可能是细胞表面ΔF508 CFTR周转的关键介质。我们使用RNA干扰技术降低人呼吸道上皮细胞中NHERF1的表达。敲低NHERF1可可逆地降低野生型CFTR的表面表达,而不改变其总表达。正如预期的那样,温度校正增加了成熟的C带ΔF508 CFTR(rΔF508),但出乎意料的是,允许未成熟的rΔF508的B带转运到细胞表面。NHERF1敲低细胞中rΔF508的表面和总表达均降低,且NHERF1敲低细胞中表面定位的rΔF508的降解甚至更快。蛋白酶体和溶酶体抑制剂处理导致NHERF1敲低细胞中表面rΔF508加速降解显著减少。这些结果表明,NHERF1在细胞表面CFTR的周转中起作用,并且细胞表面的rΔF508 CFTR仍然极易降解。

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