Surface Charges of the Membrane Crucially Affect Regulation of Na,K-ATPase by Phospholemman (FXYD1)

被引:0
作者
Erica Cirri
Corinna Kirchner
Simon Becker
Adriana Katz
Steven J. Karlish
Hans-Jürgen Apell
机构
[1] University of Konstanz,Department of Biology and Graduate School of Chemical Biology
[2] Weizmann Institute of Science,Department of Biological Chemistry
[3] Institut Pasteur,Molecular Mechanisms of Membrane Transport Laboratory
来源
The Journal of Membrane Biology | 2013年 / 246卷
关键词
Sodium pump; Regulation; Transport kinetics; Sodium binding; Electrogenicity; Protein–protein interaction;
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中图分类号
学科分类号
摘要
The human α1/His10-β1 isoform of Na,K-ATPase has been reconstituted as a complex with and without FXYD1 into proteoliposomes of various lipid compositions in order to study the effect of the regulatory subunit on the half-saturating Na+ concentration (K1/2) of Na+ ions for activation of the ion pump. It has been shown that the fraction of negatively charged lipid in the bilayer crucially affects the regulatory properties. At low concentrations of the negatively charged lipid DOPS (<10 %), FXYD1 increases K1/2 of Na+ ions for activation of the ion pump. Phosphorylation of FXYD1 by protein kinase A at Ser68 abrogates this effect. Conversely, for proteoliposomes made with high concentrations of DOPS (>10 %), little or no effect of FXYD1 on the K1/2 of Na+ ions is observed. Depending on ionic strength and lipid composition of the proteoliposomes, FXYD1 can alter the K1/2 of Na+ ions by up to twofold. We propose possible molecular mechanisms to explain the regulatory effects of FXYD1 and the influence of charged lipid and protein phosphorylation. In particular, the positively charged C-terminal helix of FXYD1 appears to be highly mobile and may interact with the cytoplasmic N domain of the α-subunit, the interaction being strongly affected by phosphorylation at Ser68 and the surface charge of the membrane.
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页码:967 / 979
页数:12
相关论文
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