Shi Chen-Xia, Wang Yu-Hong, Dong Fang, Zhang Yong-Jian, Xu Yan-Fang
Department of Pharmacology, Hebei Medical University, Shijiazhuang 050017, China.
Sheng Li Xue Bao. 2007 Feb 25;59(1):19-26.
Transmural electrical heterogeneity plays an important role in the normal dispersion of repolarizaion and propagation of excitation in the heart. The amplification of transmural electrical heterogeneity contributes to the genesis of arrhythmias in cardiac hypertrophy and failure. We established a mouse model with cardiac failure by aortic banding and investigated the possible contribution of L-type calcium current (I(Ca-L)) to transmural electrical heterogeneity in both normal and failing hearts. Single myocytes were enzymatically isolated from subendocardial and subepicardial myocardium of the free left ventricle wall. The recordings of action potential and I(Ca-L) were performed using the conventional whole-cell patch-clamp technique. The results showed that: (1) The action potential duration at 90% repolarization (APD(90)) of the subendocardial myocytes in normal control mice was (38.2 +/- 6.44) ms, which was significantly longer than that of the subepicardial myocytes [(15.672 +/- 5.31) ms]. The ratio of APD(90) for subendocardial/subepicardial myocytes was about 2.5:1. The peak I(Ca-L) density in subendocardial myocytes was (-2.7 +/- 0.49) pA/pF, which was not different from that in subepicardial myocytes [(-2.54 +/- 0.53) pA/pF]. (2) In failing hearts, both action potential duration at 50% repolarization (APD(50)) and APD(90) were remarkably prolonged either in subendocardial or subepicardial myocytes compared to that in sham hearts. The subendocardial myocytes had much longer APD. The ratio of APD(90) for subendocardial/subepicardial myocytes changed to about 4.2:1. (3) I(Ca-L) density in subendocardial myocytes was significantly decreased in failing hearts compared with that in sham hearts. At four test potentials from +10 mV to +40 mV, the density of I(Ca-L) from subendocardial myocytes in failing hearts was decreased by 20.2%, 21.4%, 21.6% and 25.7%, respectively (P<0.01). However, no significant difference was observed in I(Ca-L) density from subepicardial myocytes in failing hearts. There was no significant difference in the kinetic properties of I(Ca-L) in subendocardial and subepicardial myocytes between the band and sham groups. We conclude that I(Ca-L) may not contribute to the physiological transmural electrical heterogeneity in mouse hearts. The electrical heterogeneity is exaggerated and the density of I(Ca-L) is decreased in the subendocardial myocytes, but not in the subepicardial myocytes in failing hearts. The results obtained suggest that the decreased density of I(Ca-L) in subendocardial myocytes is possibly an adaptive response to the prolongation of action potential due to delayed depolarization and may reduce the transmural dispersion of repolarization in heart failure.
透壁电不均一性在心脏复极化的正常离散和兴奋传播中起重要作用。透壁电不均一性的增强促成了心脏肥大和衰竭时心律失常的发生。我们通过主动脉缩窄建立了心力衰竭小鼠模型,并研究了L型钙电流(I(Ca-L))在正常和衰竭心脏中对透壁电不均一性的可能作用。从左心室游离壁的心内膜下和心外膜下心肌中酶解分离单个心肌细胞。使用传统的全细胞膜片钳技术记录动作电位和I(Ca-L)。结果显示:(1)正常对照小鼠的心内膜下心肌细胞在90%复极化时的动作电位时程(APD(90))为(38.2±6.44)毫秒,显著长于心外膜下心肌细胞的[(15.672±5.31)毫秒]。心内膜下/心外膜下心肌细胞的APD(90)比值约为2.5:1。心内膜下心肌细胞的I(Ca-L)峰值密度为(-2.7±0.49) pA/pF,与心外膜下心肌细胞的[(-2.54±0.53) pA/pF]无差异。(2)在衰竭心脏中,与假手术组相比,心内膜下和心外膜下心肌细胞在50%复极化时的动作电位时程(APD(50))和APD(90)均显著延长。心内膜下心肌细胞的APD更长。心内膜下/心外膜下心肌细胞的APD(90)比值变为约4.2:1。(3)与假手术组相比,衰竭心脏的心内膜下心肌细胞中I(Ca-L)密度显著降低。在从+10 mV到+40 mV的四个测试电位下,衰竭心脏的心内膜下心肌细胞的I(Ca-L)密度分别降低了20.2%、21.4%、21.6%和25.7%(P<0.01)。然而,衰竭心脏的心外膜下心肌细胞的I(Ca-L)密度未观察到显著差异。结扎组和假手术组的心内膜下和心外膜下心肌细胞中I(Ca-L)的动力学特性无显著差异。我们得出结论,I(Ca-L)可能对小鼠心脏的生理性透壁电不均一性无作用。在衰竭心脏中,电不均一性加剧,心内膜下心肌细胞而非心外膜下心肌细胞的I(Ca-L)密度降低。所得结果表明,心内膜下心肌细胞中I(Ca-L)密度降低可能是对由于延迟去极化导致的动作电位延长的一种适应性反应,并可能减少心力衰竭时复极化的透壁离散。