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电压依赖性钾通道Kv1.5的翻译后修饰:羧基末端棕榈酰化调节其生物学特性。

Posttranslational modification of voltage-dependent potassium channel Kv1.5: COOH-terminal palmitoylation modulates its biological properties.

作者信息

Jindal Hitesh K, Folco Eduardo J, Liu Gong Xin, Koren Gideon

机构信息

Cardiovascular Research Center, Rhode Island Hospital, Brown University School of Medicine, 1 Hoppin Street, Providence, RI 02903, USA.

出版信息

Am J Physiol Heart Circ Physiol. 2008 May;294(5):H2012-21. doi: 10.1152/ajpheart.01374.2007. Epub 2008 Mar 14.

Abstract

The physiological function of ion channels is affected by protein-protein and protein-membrane interactions that modulate their activity and/or localization. Palmitoylation modulates protein function by facilitating targeted membrane association, interaction with other proteins, and determining subcellular localization. In this study, we demonstrate that the voltage-dependent potassium (Kv) channel Kv1.5 is palmitoylated and that the mutation of COOH-terminal cysteines is sufficient to abolish the palmitoylation of the Kv1.5 polypeptide in Chinese hamster ovary (CHO) cells. The labeling represented the thioester linkage of the labeled palmitic acid to cysteine rather than amide and oxygen ester linkages as judged by the release of the palmitic acid upon the treatment of the gel with hydroxylamine at a neutral pH. Site-directed mutagenesis and radiolabeling studies revealed that C593 was the sole site of palmitoylation. The elucidation of the biological function of palmitoylation revealed that the expression of the FLAG-Kv1.5 palmitoylation-deficient mutant (FL-Kv1.5(Palm-)) in stable CHO cells increased membrane expression as determined by the biotinylation of surface proteins and quantitative immunofluorescence analyses of these cells, in turn enhancing the outward potassium current. This enhanced surface expression and the currents were consequential to the slower rate of internalization, causing an increased localization of FL-Kv1.5(Palm-) in the plasma membrane compared with the wild-type FL-Kv1.5 channels. We conclude that the Kv1.5 channel is palmitoylated and that its palmitoylation modulates its biological functions and, therefore, might provide a physiological link between the metabolic state and the expression of Kv1.5 on the plasma membrane.

摘要

离子通道的生理功能受蛋白质 - 蛋白质和蛋白质 - 膜相互作用的影响,这些相互作用可调节其活性和/或定位。棕榈酰化通过促进靶向膜结合、与其他蛋白质的相互作用以及确定亚细胞定位来调节蛋白质功能。在本研究中,我们证明电压依赖性钾(Kv)通道Kv1.5被棕榈酰化,并且中国仓鼠卵巢(CHO)细胞中Kv1.5多肽的COOH末端半胱氨酸突变足以消除其棕榈酰化。通过在中性pH下用羟胺处理凝胶后棕榈酸的释放判断,标记代表标记的棕榈酸与半胱氨酸的硫酯键,而非酰胺键和氧酯键。定点诱变和放射性标记研究表明C593是棕榈酰化的唯一位点。对棕榈酰化生物学功能的阐明显示,稳定CHO细胞中FLAG - Kv1.5棕榈酰化缺陷突变体(FL - Kv1.5(Palm -))的表达增加了膜表达,这通过表面蛋白的生物素化和这些细胞的定量免疫荧光分析确定,进而增强了外向钾电流。这种增强的表面表达和电流是内化速率较慢的结果,与野生型FL - Kv1.5通道相比,导致FL - Kv1.5(Palm -)在质膜中的定位增加。我们得出结论,Kv1.5通道被棕榈酰化,其棕榈酰化调节其生物学功能,因此可能在代谢状态与质膜上Kv1.5的表达之间提供生理联系。

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