电生理学
离体
体内
心脏传导系统
心脏电生理学
房室结
心内注射
神经科学
医学
安全药理学
生物
心脏病学
心电图
生物医学工程
内科学
药理学
心动过速
药品
生物技术
作者
Konstantin Hennis,René D. Rötzer,Julia Rilling,Yakun Wu,Stefan Bernhard Thalhammer,Martin Biel,Christian Wahl‐Schott,Stefanie Fenske
出处
期刊:Nature Protocols
[Nature Portfolio]
日期:2022-03-21
卷期号:17 (5): 1189-1222
被引量:13
标识
DOI:10.1038/s41596-021-00678-z
摘要
The mouse is a common and cost-effective animal model for basic research, and the number of genetically engineered mouse models with cardiac phenotype is increasing. In vivo electrophysiological study in mice is similar to that performed in humans. It is indispensable for acquiring intracardiac electrocardiogram recordings and determining baseline cardiac cycle intervals. Furthermore, the use of programmed electrical stimulation enables determination of parameters such as sinoatrial conduction time, sinus node recovery time, atrioventricular-nodal conduction properties, Wenckebach periodicity, refractory periods and arrhythmia vulnerability. This protocol describes specific procedures for determining these parameters that were adapted from analogous human protocols for use in mice. We include details of ex vivo electrophysiological study, which provides detailed insights into intrinsic cardiac electrophysiology without external influences from humoral and neural factors. In addition, we describe a heart preparation with intact innervation by the vagus nerve that can be used as an ex vivo model for vagal control of the cardiac conduction system. Data acquisition for in vivo and ex vivo electrophysiological study takes ~1 h per mouse, depending on the number of stimulation protocols applied during the procedure. The technique yields highly reliable results and can be used for phenotyping of cardiac disease models, elucidating disease mechanisms and confirming functional improvements in gene therapy approaches as well as for drug and toxicity testing.
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