Computational analysis of the human sinus node action potential: model development and effects of mutations

被引:85
作者
Fabbri, Alan [1 ]
Fantini, Matteo [1 ]
Wilders, Ronald [2 ]
Severi, Stefano [1 ]
机构
[1] Univ Bologna, Dept Elect Elect & Informat Engn Guglielmo Marcon, Computat Physiopathol Unit, Cesena, Italy
[2] Univ Amsterdam, Acad Med Ctr, Dept Anat Embryol & Physiol, Amsterdam, Netherlands
来源
JOURNAL OF PHYSIOLOGY-LONDON | 2017年 / 595卷 / 07期
关键词
action potentials; cardiac electrophysiology; cardiomyocyte; cardiovascular models; computer simulation; heart rate; human; ion channels; sinoatrial node; HUMAN SINOATRIAL NODE; LONG-QT SYNDROME; HYPERPOLARIZATION-ACTIVATED CURRENT; MAJOR PACEMAKING ROLE; MATHEMATICAL-MODEL; FUNNY CURRENT; ELECTRICAL-ACTIVITY; CARDIAC-PACEMAKER; HCN4; CHANNEL; NA+ CHANNEL;
D O I
10.1113/JP273259
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
The sinoatrial node (SAN) is the normal pacemaker of the mammalian heart. Over several decades, a large amount of data on the ionic mechanisms underlying the spontaneous electrical activity of SAN pacemaker cells has been obtained, mostly in experiments on single cells isolated from rabbit SAN. This wealth of data has allowed the development of mathematical models of the electrical activity of rabbit SAN pacemaker cells. The present study aimed to construct a comprehensive model of the electrical activity of a human SAN pacemaker cell using recently obtained electrophysiological data from human SAN pacemaker cells. We based our model on the recent Severi-DiFrancesco model of a rabbit SAN pacemaker cell. The action potential and calcium transient of the resulting model are close to the experimentally recorded values. The model has a much smaller funny current' (I-f) than do rabbit cells, although its modulatory role is highly similar. Changes in pacing rate upon the implementation of mutations associated with sinus node dysfunction agree with the clinical observations. This agreement holds for both loss-of-function and gain-of-function mutations in the HCN4, SCN5A and KCNQ1 genes, underlying ion channelopathies in I-f, fast sodium current and slow delayed rectifier potassium current, respectively. We conclude that our human SAN cell model can be a useful tool in the design of experiments and the development of drugs that aim to modulate heart rate.
引用
收藏
页码:2365 / 2396
页数:32
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