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Independence of AP propagation velocity to transjunctional voltage dependence of gap junctional coupling

机译:AP传播速度对间隙连接耦合的转向电压依赖性的独立性

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Gap junctions are protein structures that form transmembrane channels between adjacent cells, thereby allowing the direct passage of ions and small molecules. They play an important role in the physiological functioning of the individual cells, and also the tissue. Experimental studies have reported a variety of gap junction subtypes, with differences in their biophysical properties, such as their unitary conductances and sensitivity to transjunctional voltage. Our study aims at computationally exploring the effect of these differences towards the spread of action potentials in syncytial tissues. Results from our simulations suggest that the propagation velocity of action potentials is independent of the transjunctional voltage dependence of the gap junction subtype. The propagation velocity was found to be constant across all subtypes tested, when the maximal conductances were set equal. This was verified using action potentials of widely varying time courses. We attribute this trend to the much slower gating kinetics of gap junctions in comparison to the time course of action potentials, and more specifically the short period where a significant transjunctional voltage is maintained.
机译:间隙连接是蛋白质结构,其在相邻电池之间形成跨膜通道,从而允许离子和小分子的直接通过。它们在个体细胞的生理功能中发挥着重要作用,以及组织。实验研究报告了各种间隙结亚型,其生物物理特性差异,例如它们的整体导电和对转向电压的敏感性。我们的研究旨在计算上探讨这些差异对合并组织中的作用潜力传播的影响。我们的模拟结果表明,动作电位的传播速度与间隙结亚型的转态电压依赖性无关。当最大导电相等时,发现在测试的所有亚型中恒定的传播速度是恒定的。这是使用广泛不同时间课程的动作潜力验证的。与运动电位的时间过程相比,我们将这种趋势归因于间隙连接的较慢的Gating动力学,更具体地是保持显着的转移电压的短时间。

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