Effects of Microgravity on Action Potential Wave Propagation in Rat Transmural Ventricle Tissue

Xiangyun Bai, Kuanquan Wang, Qince Li, Cunjin Luo, Yacong Li, Henggui Zhang
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Abstract

Experiments mimicking microgravity condition have multiple effects on cardiac electrophysiology. Therefore, based on experimental data of rats with 2-weeks (short term) and 4-weeks (long term) tail suspension, effect of microgravity on action potentials (APs) were simulated by decreasing $I_{CaL}$ and increasing $I_{NaK}$ based on rat endocardial and epicardial models. Additionally, a 1D model was constructed by considering the increasing of connexin 43 under microgravity condition. Simulation results show that $I_{CaL}$ and $I_{NaK}$ changes have similar effect in reducing APD90 under short term condition, while the inhibition of $I_{CaL}$ is the main factor in reducing APD90 under long term condition. The simulated pseudo-ECG in both conditions showed a shortened QT interval and depressed of ST phase and $T$ wave as experimental observations. Increased expression of connexin 43 in microgravity condition resulted in a mild increase in conduction velocity. Meanwhile, the vulnerable window in 1D ventricle strand reduced in microgravity condition. Compared with short term microgravity condition, all these changes were more prominent in the long term microgravity condition. In conclusion, this study provides new insight into understanding of impaired cardiac functions in short and long term microgravity conditions during spaceflight.
微重力对大鼠跨壁脑室组织动作电位波传播的影响
模拟微重力环境的实验对心脏电生理有多重影响。因此,基于2周(短期)和4周(长期)悬尾大鼠实验数据,以心内膜和心外膜模型为基础,通过降低$I_{CaL}$和增加$I_{NaK}$模拟微重力对动作电位(APs)的影响。此外,考虑微重力条件下连接蛋白43的增加,构建了一维模型。模拟结果表明,在短期条件下,$I_{CaL}$和$I_{NaK}$的变化对降低APD90的效果相似,而在长期条件下,$I_{CaL}$的抑制作用是降低APD90的主要因素。实验观察两种情况下模拟的伪心电图QT间期缩短,ST相和$T$波下降。微重力条件下连接蛋白43的表达增加导致传导速度轻微增加。同时,微重力条件下1D心室链的脆弱窗口减小。与短期微重力条件相比,这些变化在长期微重力条件下更为明显。总之,这项研究为理解太空飞行中短期和长期微重力条件下心脏功能受损提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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