Li Qiuju, Huang Hai, Liu Gele, Lam Khanh, Rutberg Julie, Green Martin S, Birnie David H, Lemery Robert, Chahine Mohamed, Gollob Michael H
Division of Cardiology, University of Ottawa Heart Institute, Ottawa, Ont., Canada.
Biochem Biophys Res Commun. 2009 Feb 27;380(1):132-7. doi: 10.1016/j.bbrc.2009.01.052. Epub 2009 Jan 22.
Genetic mutations of the cardiac sodium channel (SCN5A) specific only to the phenotype of atrial fibrillation have recently been described. However, data on the biophysical properties of SCN5A variants associated with atrial fibrillation are scarce. In a mother and son with lone atrial fibrillation, we identified a novel SCN5A coding variant, K1493R, which altered a highly conserved residue in the DIII-IV linker and was located six amino acids downstream from the fast inactivation motif of sodium channels. Biophysical studies of K1493R in tsA201 cells demonstrated a significant positive shift in voltage-dependence of inactivation and a large ramp current near resting membrane potential, indicating a gain-of-function. Enhanced cellular excitability was observed in transfected HL-1 atrial cardiomyocytes, including spontaneous action potential depolarizations and a lower threshold for action potential firing. These novel biophysical observations provide molecular evidence linking cellular "hyperexcitability" as a mechanism inducing vulnerability to this common arrhythmia.
最近有报道称,心脏钠通道(SCN5A)的基因突变仅与房颤表型相关。然而,关于与房颤相关的SCN5A变体生物物理特性的数据却很稀少。在一对患有孤立性房颤的母子中,我们鉴定出一种新的SCN5A编码变体K1493R,它改变了DIII-IV连接子中一个高度保守的残基,且位于钠通道快速失活基序下游六个氨基酸处。对tsA201细胞中K1493R的生物物理研究表明,失活电压依赖性出现显著正向偏移,且在静息膜电位附近有较大的斜坡电流,表明存在功能增益。在转染的HL-1心房心肌细胞中观察到细胞兴奋性增强,包括自发动作电位去极化以及动作电位发放阈值降低。这些新的生物物理观察结果提供了分子证据,将细胞“过度兴奋性”作为诱发这种常见心律失常易感性的一种机制联系起来。