The Center for Advanced Medical Engineering and Informatics, Osaka University, Osaka, Japan.
Department of Cardiovascular and Respiratory Medicine, Heart Rhythm Center, Shiga University of Medical Science, Shiga, Japan.
Biophys J. 2011 Feb 2;100(3):554-563. doi: 10.1016/j.bpj.2010.12.3716.
The gap junction and voltage-gated Na(+) channel play an important role in the action potential propagation. The purpose of this study was to elucidate the roles of subcellular Na(+) channel distribution in action potential propagation. To achieve this, we constructed the myocardial strand model, which can calculate the current via intercellular cleft (electric-field mechanism) together with gap-junctional current (gap-junctional mechanism). We conducted simulations of action potential propagation in a myofiber model where cardiomyocytes were electrically coupled with gap junctions alone or with both the gap junctions and the electric field mechanism. Then we found that the action potential propagation was greatly affected by the subcellular distribution of Na(+) channels in the presence of the electric field mechanism. The presence of Na(+) channels in the lateral membrane was important to ensure the stability of propagation under conditions of reduced gap-junctional coupling. In the poorly coupled tissue with sufficient Na(+) channels in the lateral membrane, the slowing of action potential propagation resulted from the periodic and intermittent dysfunction of the electric field mechanism. The changes in the subcellular Na(+) channel distribution might be in part responsible for the homeostatic excitation propagation in the diseased heart.
缝隙连接和电压门控钠离子通道在动作电位传播中起着重要作用。本研究旨在阐明亚细胞钠离子通道分布在动作电位传播中的作用。为此,我们构建了心肌链模型,该模型可以计算细胞间缝隙(电场机制)和缝隙连接电流(缝隙连接机制)的电流。我们对心肌纤维模型中的动作电位传播进行了模拟,其中心肌细胞仅通过缝隙连接或通过缝隙连接和电场机制进行电耦合。然后,我们发现,在存在电场机制的情况下,钠离子通道的亚细胞分布对动作电位传播有很大的影响。侧向膜中的钠离子通道的存在对于确保在缝隙连接偶联减少的情况下传播的稳定性很重要。在侧向膜中具有足够钠离子通道的连接不良的组织中,动作电位传播的减慢是由于电场机制的周期性和间歇性功能障碍所致。亚细胞钠离子通道分布的变化可能部分解释了病变心脏中的稳态兴奋传播。