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首页> 外文期刊>Journal of cardiovascular electrophysiology >Ventricular filling slows epicardial conduction and increases action potential duration in an optical mapping study of the isolated rabbit heart.
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Ventricular filling slows epicardial conduction and increases action potential duration in an optical mapping study of the isolated rabbit heart.

机译:在离体兔心脏的光学成像研究中,心室充盈减慢心外膜传导并增加动作电位持续时间。

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摘要

INTRODUCTION: Mechanical stimulation can induce electrophysiologic changes in cardiac myocytes, but how mechanoelectric feedback in the intact heart affects action potential propagation remains unclear. METHODS AND RESULTS: Changes in action potential propagation and repolarization with increased left ventricular end-diastolic pressure from 0 to 30 mmHg were investigated using optical mapping in isolated perfused rabbit hearts. With respect to 0 mmHg, epicardial strain at 30 mmHg in the anterior left ventricle averaged 0.040 +/- 0.004 in the muscle fiber direction and 0.032 +/- 0.006 in the cross-fiber direction. An increase in ventricular loading increased average epicardial activation time by 25%+/- 3% (P < 0.0001) and correspondingly decreased average apparent surface conduction velocity by 16%+/- 7% (P = 0.007). Ventricular loading did not significantly alter action potential duration at 20% repolarization (APD20) but did at 80% repolarization (APD80), from 179 +/- 7 msec to 207 +/- 5 msec (P < 0.0001). The dispersion of APD20 was decreased with loading from 19 +/- 2 msec to 13 +/- 2 msec (P = 0.024), whereas the dispersion of APD80 was not significantly changed. These electrophysiologic changes with ventricular loading were not affected by the nonspecific stretch-activated channel blocker streptomycin (200 microM) and were not attributable to changes in myocardial perfusion or the presence of an electromechanical decoupling agent (butanedione monoxime) during optical mapping. CONCLUSION: Acute loading of the left ventricle of the isolated rabbit heart decreased apparent epicardial conduction velocity and increased action potential duration by a load-dependent mechanism that may not involve stretch-activated channels.
机译:简介:机械刺激可以诱导心肌细胞的电生理变化,但是完整心脏中的机械电反馈如何影响动作电位的传播尚不清楚。方法和结果:在离体灌注兔心脏中使用光学测绘研究了左室舒张末期压力从0增加到30 mmHg时动作电位传播和复极化的变化。对于0mmHg,在左心室前部在30mmHg的心外膜应变在肌纤维方向上平均为0.040 +/- 0.004,而在交叉纤维方向上平均为0.032 +/- 0.006。心室负荷的增加使平均心外膜激活时间增加25%+ /-3%(P <0.0001),并相应地使平均表观表面传导速度降低16%+ /-7%(P = 0.007)。在20%复极(APD20)时,心室负荷并未显着改变动作电位的持续时间,但在80%复极(APD80)时,心室负荷确实从179 +/- 7毫秒降低至207 +/- 5毫秒(P <0.0001)。随着负载的增加,APD20的分散度从19 +/- 2毫秒降低到13 +/- 2毫秒(P = 0.024),而APD80的分散度没有明显变化。这些具有心室负荷的电生理变化不受非特异性伸展激活通道阻滞剂链霉素(200 microM)的影响,并且不归因于光学映射过程中心肌灌注的变化或存在机电去偶联剂(丁二酮一肟)。结论:孤立的兔心脏左心室的急性负荷通过不依赖于拉伸激活通道的负荷依赖性机制降低了明显的心外膜传导速度并增加了动作电位持续时间。

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