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一种顶端PDZ蛋白将囊性纤维化跨膜传导调节因子锚定到细胞骨架上。

An apical PDZ protein anchors the cystic fibrosis transmembrane conductance regulator to the cytoskeleton.

作者信息

Short D B, Trotter K W, Reczek D, Kreda S M, Bretscher A, Boucher R C, Stutts M J, Milgram S L

机构信息

Department of Physiology, University of North Carolina, Chapel Hill, North Carolina 27599, USA.

出版信息

J Biol Chem. 1998 Jul 31;273(31):19797-801. doi: 10.1074/jbc.273.31.19797.

Abstract

The function of the cystic fibrosis transmembrane conductance regulator (CFTR) as a Cl- channel in the apical membrane of epithelial cells is extensively documented. However, less is known about the molecular determinants of CFTR residence in the apical membrane, basal regulation of its Cl- channel activity, and its reported effects on the function of other transporters. These aspects of CFTR function likely require specific interactions between CFTR and unknown proteins in the apical compartment of epithelial cells. Here we report that CFTR interacts with the recently discovered protein, EBP50 (ERM-binding phosphoprotein 50). EBP50 is concentrated at the apical membrane in human airway epithelial cells, in vivo, and CFTR and EBP50 associate in in vitro binding assays. The CFTR-EBP50 interaction requires the COOH-terminal DTRL sequence of CFTR and utilizes either PDZ1 or PDZ2 of EBP50, although binding to PDZ1 is of greater affinity. Through formation of a complex, the interaction between CFTR and EBP50 may influence the stability and/or regulation of CFTR Cl- channel function in the cell membrane and provides a potential mechanism through which CFTR can affect the activity of other apical membrane proteins.

摘要

囊性纤维化跨膜传导调节因子(CFTR)作为上皮细胞顶端膜中的氯离子通道,其功能已有广泛记载。然而,关于CFTR定位于顶端膜的分子决定因素、其氯离子通道活性的基础调节以及其对其他转运蛋白功能的报道效应,我们了解得较少。CFTR功能的这些方面可能需要CFTR与上皮细胞顶端区室中未知蛋白质之间的特定相互作用。在此,我们报告CFTR与最近发现的蛋白质EBP50(ERM结合磷蛋白50)相互作用。在体内,EBP50集中于人呼吸道上皮细胞的顶端膜,并且在体外结合试验中CFTR与EBP50缔合。CFTR-EBP50相互作用需要CFTR的COOH末端DTRL序列,并利用EBP50的PDZ1或PDZ2,尽管与PDZ1的结合亲和力更高。通过形成复合物,CFTR与EBP50之间的相互作用可能影响细胞膜中CFTR氯离子通道功能的稳定性和/或调节,并提供一种潜在机制,通过该机制CFTR可以影响其他顶端膜蛋白的活性。

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