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首页> 外文期刊>Journal of cardiovascular electrophysiology >Mathematical simulations of the effects of altered AMP-kinase activity on I and the action potential in rat ventricle.
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Mathematical simulations of the effects of altered AMP-kinase activity on I and the action potential in rat ventricle.

机译:数学模拟改变AMP激酶活性对I和大鼠脑室动作电位的影响。

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摘要

INTRODUCTION: Alterations in the activity of a so-called "metabolic switch" enzyme, adenosine monophosphate-activated protein kinase (AMP kinase), in mammalian heart contribute to the conduction abnormalities and rhythm disturbances in the settings of Wolff-Parkinson-White syndrome and ventricular pre-excitation. A recent study by Light et al. has shown that augmented AMP kinase activity can alter the biophysical properties of mammalian cardiac sodium currents. These experiments involved an electrophysiological analysis following heterologous expression of human Na(v)1.5 in tsA201 cells. Constitutive activation of AMP kinase followed by co-transfection caused: (i) a hyperpolarizing shift in the activation curve for I(Na), (ii) a small change in the voltage dependence of steady-state inactivation, and (iii) a significant slowing in the rate of inactivation of I(Na). METHODS AND RESULTS: We have attempted to simulate these results using our mathematical model of the membrane action potential of the adult rat ventricular myocyte. The changes in I(Na) produced by AMP kinase activation and/or overexpression can be reconstructed mathematically by altering two rate constants in a Markovian model that governs the I(Na) kinetics. Simulated macroscopic I(Na) records in which a fraction (10-100%) of the Na(+) channels had the appropriate rate constants for two state-dependent transitions increased by a factor of 100-fold exhibited: (i) slowed inactivation, (ii) a shift in steady-state activation to more hyperpolarized membrane potentials, and (iii) a very small change in the voltage dependence of steady-state inactivation. SUMMARY: Thus, straightforward modifications of a previously published kinetic scheme for the time and voltage dependence of mammalian heart I(Na), when incorporated into a mathematical model for the rat ventricular action potential can reproduce the main features of these AMP kinase-induced modifications in I(Na) in mammalian ventricle. Ongoing mathematical simulations are directed toward developing formulations that mimic the molecular mechanisms for the AMP kinase effects, e.g., changes in the kinetics of I(Na) resulting from selective phosphorylation/dephosphorylation of sites on the alpha or beta subunits which comprise human Na(v)1.5. Thereafter, incorporation of these changes into a mathematical model for the action potential of the human ventricular myocyte is planned.
机译:引言:哺乳动物心脏中所谓的“代谢转换”酶,腺苷一磷酸激活蛋白激酶(AMP激酶)的活性改变,导致Wolff-Parkinson-White综合征和心室预激。 Light等人的最新研究。已经显示出增强的AMP激酶活性可以改变哺乳动物心脏钠电流的生物物理特性。这些实验涉及在tsA201细胞中异源表达人Na(v)1.5后的电生理分析。 AMP激酶的组成性激活随后共转染导致:(i)I(Na)的激活曲线发生超极化位移,(ii)稳态失活的电压依赖性小变化,并且(iii)减缓I(Na)的失活速率。方法和结果:我们试图使用成年大鼠心室肌细胞膜动作电位的数学模型模拟这些结果。可以通过改变控制I(Na)动力学的马尔可夫模型中的两个速率常数,从数学上重建由AMP激酶激活和/或过表达产生的I(Na)的变化。模拟的宏观I(Na)记录显示其中一部分(10-100%)的Na(+)通道具有两个状态相关的跃迁的适当速率常数,这些跃迁增加了100倍:(i)减慢了灭活速度;(ii)稳态激活转移到更多的超极化膜电位,以及(iii)稳态灭活对电压的依赖性很小。摘要:因此,对哺乳动物心脏I(Na)的时间和电压依赖性的先前发表的动力学方案的直接修改,如果并入大鼠心室动作电位的数学模型,则可以重现这些AMP激酶诱导的修改的主要特征在哺乳动物脑室的I(Na)中正在进行的数学模拟旨在开发模仿AMP激酶作用的分子机制的制剂,例如,由包含人Na(v)的α或β亚基上位点的选择性磷酸化/去磷酸化导致的I(Na)动力学变化。 1.5)。此后,计划将这些变化合并到人心室肌细胞动作电位的数学模型中。

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