While it is well established that class-I antiarrhythmics block cardiac sodium channels, the mechanism of action of therapeutic levels of these drugs is not well understood. Using a combination of mathematical modeling and in vitro experiments, we studied the failure of activation of action potentials in single ventricular cells and in tissue caused by Na(+) channel block. Our computations of block and unblock of sodium channels by a theoretical class-Ib antiarrhythmic agent predict differences in the concentrations required to cause activation failure in single cells as opposed to multicellular preparations. We tested and confirmed these in silico predictions with in vitro experiments on isolated guinea-pig ventricular cells and papillary muscles stimulated at various rates (2-6.67 Hz) and exposed to various concentrations (5 Ã 10(-6) to 500 Ã 10(-6) mol/l) of lidocaine. The most salient result was that whereas large doses (5 Ã 10(-4) mol/l or higher) of lidocaine were required to inhibit action potentials temporarily in single cells, much lower doses (5 Ã 10(-6) mol/l), i.e., therapeutic levels, were sufficient to have the same effect in papillary muscles: a hundredfold difference. Our experimental results and mathematical analysis indicate that the syncytial nature of cardiac tissue explains the effects of clinically relevant doses of Na(+) channel blockers.
Rate-dependent activation failure in isolated cardiac cells and tissue due to Na+ channel block.
由于钠离子通道阻滞,导致分离的心肌细胞和组织中速率依赖性激活失败
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作者:Varghese Anthony, Spindler Anthony J, Paterson David, Noble Denis
| 期刊: | American Journal of Physiology-Heart and Circulatory Physiology | 影响因子: | 4.100 |
| 时间: | 2015 | 起止号: | 2015 Nov 15; 309(10):H1753-63 |
| doi: | 10.1152/ajpheart.00805.2014 | 研究方向: | 细胞生物学 |
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