Enhanced Basal Activity of a Cardiac Ca2+ Release Channel (Ryanodine Receptor) Mutant Associated With Ventricular Tachycardia and Sudden Death

D. Jiang, Bailong Xiao, Lin Zhang, S. Chen
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引用次数: 188

Abstract

Abstract— Mutations in the human cardiac Ca2+ release channel (ryanodine receptor, RyR2) gene have recently been shown to cause effort-induced ventricular arrhythmias. However, the consequences of these disease-causing mutations in RyR2 channel function are unknown. In the present study, we characterized the properties of mutation R4496C of mouse RyR2, which is equivalent to a disease-causing human RyR2 mutation R4497C, by heterologous expression of the mutant in HEK293 cells. [3H]ryanodine binding studies revealed that the R4496C mutation resulted in an increase in RyR2 channel activity in particular at low Ca2+ concentrations. This increased basal channel activity remained sensitive to modulation by caffeine, ATP, Mg2+, and ruthenium red. In addition, the R4496C mutation enhanced the sensitivity of RyR2 to activation by Ca2+ and by caffeine. Single-channel analysis showed that single R4496C mutant channels exhibited considerable channel openings at low Ca2+ concentrations. HEK293 cells transfected with mutant R4496C displayed spontaneous Ca2+ oscillations more frequently than cells transfected with wild-type RyR2. Substitution of a negatively charged glutamate for the positively charged R4496 (R4496E) further enhanced the basal channel activity, whereas replacement of R4496 by a positively charged lysine (R4496K) had no significant effect on the basal activity. These observations indicate that the charge and polarity at residue 4496 plays an essential role in RyR2 channel gating. Enhanced basal activity of RyR2 may underlie an arrhythmogenic mechanism for effort-induced ventricular tachycardia.
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心肌Ca2+释放通道(Ryanodine受体)突变体与室性心动过速和猝死相关的基础活性增强
摘要-人类心脏Ca2+释放通道(ryanodine receptor, RyR2)基因的突变最近被证明可引起心力诱导的室性心律失常。然而,这些致病突变对RyR2通道功能的影响尚不清楚。在本研究中,我们通过在HEK293细胞中异源表达小鼠RyR2突变R4496C,表征了其与人类致病RyR2突变R4497C等同的特性。[3H]ryanodine结合研究表明,R4496C突变导致RyR2通道活性增加,特别是在低Ca2+浓度下。这种增加的基础通道活性对咖啡因、ATP、Mg2+和钌红的调节仍然敏感。此外,R4496C突变增强了RyR2对Ca2+和咖啡因激活的敏感性。单通道分析表明,在低Ca2+浓度下,单个R4496C突变体通道显示出相当大的通道打开。转染突变体R4496C的HEK293细胞比转染野生型RyR2的细胞更频繁地表现出自发的Ca2+振荡。带负电荷的谷氨酸取代带正电荷的R4496 (R4496E)进一步增强了基础通道活性,而带正电荷的赖氨酸(R4496K)取代R4496对基础通道活性没有显著影响。这些观察结果表明,残基4496的电荷和极性在RyR2通道门控中起着至关重要的作用。RyR2基础活性的增强可能是努力诱发室性心动过速的致心律失常机制的基础。
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