College of Pharmacy, Division of Pharmacology, The Ohio State University, Columbus, OH 43210, USA.
J Cardiovasc Pharmacol. 2013 May;61(5):401-7. doi: 10.1097/FJC.0b013e31828748ca.
Oxidative stress has been implicated in the pathogenesis of heart failure and atrial fibrillation and can result in increased peroxynitrite production in the myocardium. Atrial and ventricular canine cardiac myocytes were superfused with 3-morpholinosydnonimine-N-ethylcarbamide (SIN-1), a peroxynitrite donor, to evaluate the acute electrophysiologic effects of peroxynitrite. Perforated whole-cell patch clamp techniques were used to record action potentials. SIN-1 (200 µM) increased the action potential duration (APD) in atrial and ventricular myocytes; however, in the atria, APD prolongation was rate independent, whereas in the ventricle APD, prolongation was rate dependent. In addition to prolongation of the action potential, beat-to-beat variability of repolarization was significantly increased in ventricular but not in atrial myocytes. We examined the contribution of intracellular calcium cycling to the effects of SIN-1 by treating myocytes with the SERCA blocker, thapsigargin (5-10 µM). Inhibition of calcium cycling prevented APD prolongation in the atrial and ventricular myocytes, and prevented the SIN-1-induced increase in ventricular beat-to-beat APD variability. Collectively, these data demonstrate that peroxynitrite affects atrial and ventricular electrophysiology differentially. A detailed understanding of oxidative modulation of electrophysiology in specific chambers is critical to optimize therapeutic approaches for cardiac diseases.
氧化应激与心力衰竭和心房颤动的发病机制有关,并可导致心肌中超氧阴离子和过氧亚硝酸盐的产生增加。用 3-吗啉代-sydnonimine-N-乙基碳酰胺(SIN-1),一种过氧亚硝酸盐供体,对心房和心室犬心肌细胞进行超灌注,以评估过氧亚硝酸盐的急性电生理效应。使用穿孔全细胞膜片钳技术记录动作电位。SIN-1(200µM)可延长心房和心室肌细胞的动作电位时程(APD);然而,在心房中,APD 延长与心率无关,而在心室中,APD 延长与心率有关。除了动作电位的延长外,心室肌细胞的复极化搏动间变异性显著增加,但心房肌细胞无此变化。我们通过用 SERCA 阻滞剂 thapsigargin(5-10µM)处理心肌细胞来研究细胞内钙循环对 SIN-1 作用的贡献。钙循环的抑制可防止心房和心室肌细胞的 APD 延长,并防止 SIN-1 引起的心室搏动间 APD 变异性增加。总之,这些数据表明过氧亚硝酸盐对心房和心室的电生理有不同的影响。详细了解特定心室中氧化调节的电生理学对于优化心脏疾病的治疗方法至关重要。