Small-conductance calcium-activated potassium channels in the heart: expression, regulation and pathological implications

SK通道 钙激活钾通道 钾通道 阿帕明 兰尼定受体 离子通道 窦房结 膜电位 化学 内科学 生物物理学 电压依赖性钙通道 内分泌学 生物 细胞生物学 细胞内 医学 受体 心率 血压
作者
Ting Liu,Tao Li,Dandi Xu,Yan Wang,Yuanyuan Zhou,Wan Jiang,Christopher L.‐H. Huang,Xiaoqiu Tan
出处
期刊:Philosophical Transactions of the Royal Society B [The Royal Society]
卷期号:378 (1879) 被引量:5
标识
DOI:10.1098/rstb.2022.0171
摘要

Ca2+-activated K+ channels are critical to cellular Ca2+ homeostasis and excitability; they couple intracellular Ca2+ and membrane voltage change. Of these, the small, 4-14 pS, conductance SK channels include three, KCNN1-3 encoded, SK1/KCa2.1, SK2/KCa2.2 and SK3/KCa2.3, channel subtypes with characteristic, EC50 ∼ 10 nM, 40 pM, 1 nM, apamin sensitivities. All SK channels, particularly SK2 channels, are expressed in atrial, ventricular and conducting system cardiomyocytes. Pharmacological and genetic modification results have suggested that SK channel block or knockout prolonged action potential durations (APDs) and effective refractory periods (ERPs) particularly in atrial, but also in ventricular, and sinoatrial, atrioventricular node and Purkinje myocytes, correspondingly affect arrhythmic tendency. Additionally, mitochondrial SK channels may decrease mitochondrial Ca2+ overload and reactive oxygen species generation. SK channels show low voltage but marked Ca2+ dependences (EC50 ∼ 300-500 nM) reflecting their α-subunit calmodulin (CaM) binding domains, through which they may be activated by voltage-gated or ryanodine-receptor Ca2+ channel activity. SK function also depends upon complex trafficking and expression processes and associations with other ion channels or subunits from different SK subtypes. Atrial and ventricular clinical arrhythmogenesis may follow both increased or decreased SK expression through decreased or increased APD correspondingly accelerating and stabilizing re-entrant rotors or increasing incidences of triggered activity. This article is part of the theme issue 'The heartbeat: its molecular basis and physiological mechanisms'.

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