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羧基末端疏水界面对于钠通道功能至关重要。与遗传性疾病的相关性。

A carboxyl-terminal hydrophobic interface is critical to sodium channel function. Relevance to inherited disorders.

作者信息

Glaaser Ian W, Bankston John R, Liu Huajun, Tateyama Michihiro, Kass Robert S

机构信息

Department of Pharmacology, Columbia University, New York, New York 10032, USA.

出版信息

J Biol Chem. 2006 Aug 18;281(33):24015-23. doi: 10.1074/jbc.M605473200. Epub 2006 Jun 22.

Abstract

Perturbation of sodium channel inactivation, a finely tuned process that critically regulates the flow of sodium ions into excitable cells, is a common functional consequence of inherited mutations associated with epilepsy, skeletal muscle disease, autism, and cardiac arrhythmias. Understanding the structural basis of inactivation is key to understanding these disorders. Here we identify a novel role for a structural motif in the COOH terminus of the heart NaV1.5 sodium channel in determining channel inactivation. Structural modeling predicts an interhelical hydrophobic interface between paired EF hands in the proximal region of the NaV1.5 COOH terminus. The predicted interface is conserved among almost all EF hand-containing proteins and is the locus of a number of disease-associated mutations. Using the structural model as a guide, we provide biochemical and biophysical evidence that the structural integrity of this interface is necessary for proper Na+ channel inactivation gating. We thus demonstrate a novel role of the sodium channel COOH terminus structure in the control of channel inactivation and in pathologies caused by inherited mutations that disrupt it.

摘要

钠通道失活是一个精确调控钠离子流入可兴奋细胞的过程,与之相关的遗传性突变会导致癫痫、骨骼肌疾病、自闭症和心律失常,而钠通道失活的扰动是这些突变常见的功能后果。了解失活的结构基础是理解这些疾病的关键。在此,我们确定了心脏NaV1.5钠通道COOH末端的一个结构基序在决定通道失活方面的新作用。结构建模预测在NaV1.5 COOH末端近端区域的成对EF手之间存在一个螺旋间疏水界面。预测的界面在几乎所有含EF手的蛋白质中都是保守的,并且是许多疾病相关突变的位点。以该结构模型为指导,我们提供了生化和生物物理证据,表明该界面的结构完整性对于适当的Na⁺通道失活门控是必要的。因此,我们证明了钠通道COOH末端结构在控制通道失活以及由破坏该结构的遗传性突变引起的病理过程中的新作用。

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