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秀丽隐杆线虫中的一种心律失常易感基因。

An arrhythmia susceptibility gene in Caenorhabditis elegans.

作者信息

Park Ki Ho, Sesti Federico

机构信息

University of Medicine and Dentistry of New Jersey, Robert Wood Johnson Medical School, Department of Physiology and Biophysics, Piscataway, New Jersey 08854, USA.

出版信息

J Biol Chem. 2007 Jul 6;282(27):19799-807. doi: 10.1074/jbc.M701625200. Epub 2007 May 9.

Abstract

kcne are evolutionarily conserved genes that encode accessory subunits of voltage-gated K(+) (Kv) channels. Missense mutations in kcne1, kcne2, and kcne3 are linked to congenital and acquired channelopathies in Homo sapiens. Here we show an unique example of conservation of kcne activities at genetic, physiological, functional, and pathophysiological level in Caenorhabditis elegans. Thus, mps-4 is the homologue of kcne1 that operates in human heart and inner ear. Like its KCNE relatives, MPS-4 assembles with a Kv channel, EXP-2, to form a complex that controls pharyngeal muscle contractility. MPS-4 modulates EXP-2 function in a similar fashion as KCNE proteins endow human channels. When defective, MPS-4, can induce abnormal repolarization by mechanisms that resemble the way KCNE proteins are thought to provoke arrhythmia in human heart. Mutation of a conserved aspartate residue associated with human disease (MPS-4-D74N) alters the functional attributes of the C. elegans current. Taken together these data underscore a significant conservation of KCNE activities in different pumps. This implies that C. elegans can develop into a system to study the molecular and genetic basis of KCNE-mediated muscle contractility and disease states.

摘要

kcne是进化上保守的基因,编码电压门控钾离子(Kv)通道的辅助亚基。kcne1、kcne2和kcne3中的错义突变与人类的先天性和获得性通道病有关。在这里,我们展示了秀丽隐杆线虫在基因、生理、功能和病理生理水平上kcne活性保守性的一个独特例子。因此,mps-4是在人类心脏和内耳中起作用的kcne1的同源物。与它的KCNE亲属一样,MPS-4与一个Kv通道EXP-2组装在一起,形成一个控制咽部肌肉收缩性的复合体。MPS-4调节EXP-2功能的方式与KCNE蛋白赋予人类通道功能的方式相似。当有缺陷时,MPS-4可通过类似于KCNE蛋白被认为在人类心脏中引发心律失常的机制诱导异常复极化。与人类疾病相关的一个保守天冬氨酸残基(MPS-4-D74N)的突变改变了秀丽隐杆线虫电流的功能特性。这些数据共同强调了KCNE活性在不同生物体中的显著保守性。这意味着秀丽隐杆线虫可以发展成为一个研究KCNE介导的肌肉收缩性和疾病状态的分子和遗传基础的系统。

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