4.1 Article Proceedings Paper

Spatiotemporal control of heart rate in a rabbit heart

期刊

JOURNAL OF ELECTROCARDIOLOGY
卷 44, 期 6, 页码 626-634

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CHURCHILL LIVINGSTONE INC MEDICAL PUBLISHERS
DOI: 10.1016/j.jelectrocard.2011.08.010

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  1. NHLBI NIH HHS [R01 HL085369, R01 HL115415, R01 HL085369-04, R01 HL085369-03] Funding Source: Medline

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Sinoatrial node is responsible for the origin of the wave of excitation, which spreads throughout the heart and orchestrates cardiac contraction via calcium-mediated excitation-contraction coupling. P wave represents the spread of excitation in the atria. It is well known that the autonomic nervous system controls the heart rate by dynamically altering both cellular ionic fluxes and the anatomical location of the leading pacemaker. In this study, we used isolated rabbit right atria and mathematical model of the pacemaker region of the rabbit heart. Application of isoproterenol resulted in dose-dependent acceleration of the heart rate and superior shift of the leading pacemaker. In the mathematical model, such behavior could be reproduced by a gradient of expression in beta 1-adrenergic receptors along the superior-inferior axis. Application of acetylcholine resulted in preferentially inferior shift of pacemaker and slowing of the heart rate. The mathematical model reproduced this behavior with imposing a gradient of expression of acetylcholine-sensitive potassium channel. We conclude that anatomical shift of the leading pacemaker in the rabbit heart could be achieved through gradient of expression of beta 1-adrenergic receptors and I(K,ACh). (C) 2011 Elsevier Inc. All rights reserved.

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