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The induction of reentry in cardiac tissue. The missing link: How electric fields alter transmembrane potential

机译:心脏组织中折返的诱导。缺失的环节:电场如何改变跨膜电位

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This review examines the initiation of reentry in cardiac muscle by strong electric shocks. Specifically, it concentrates on the mechanisms by which electric shocks change the transmembrane potential of the cardiac membrane and create the physiological substrate required by the critical point theory for the initiation of rotors. The mechanisms examined include (1) direct polarization of the tissue by the stimulating current, as described by the one-dimensional cable model and its two-and three-dimensional extensions, (2) the presence of virtual anodes and cathodes, as described by the bidomain model with unequal anisotropy ratios of the intra- and extracellular spaces, (3) polarization of the tissue due to changing orientation of cardiac fibers, and (4) polarization of individual cells or groups of cells by the electric field ("sawtooth potential"). The importance of these mechanisms in the initiation of reentry is examined in two case studies: the induction of rotors using successive stimulation with a unipolar electrode, and the induction of rotors using cross-field stimulation. These cases reveal that the mechanism by which a unipolar stimulation induces arrhythmias can be explained in the framework of the bidomain model with unequal anisotropy ratios. In contrast, none of the examined mechanisms provide an adequate explanation for the induction of rotors by cross-field stimulation. Hence, this study emphasizes the need for further experimental and theoretical work directed toward explaining the mechanism of field stimulation.
机译:这篇综述探讨了强电击在心肌中引起折返的开始。特别地,它集中于电击改变心脏膜的跨膜电位并产生临界点理论所要求的用于启动转子的生理基质的机制。检查的机制包括(1)通过刺激电流使组织直接极化,如一维电缆模型及其二维和三维扩展所描述的;(2)虚拟阳极和阴极的存在,如胞内和胞外空间的各向异性比不相等的双畴模型;(3)由于心脏纤维方向改变而引起的组织极化;以及(4)电场使单个细胞或细胞组极化(“锯齿电位”) ”)。在两个案例研究中检查了这些机制在重新进入大气中的重要性:使用单极电极的连续激励来感应转子,以及使用交叉场激励来感应转子。这些情况表明,单极性刺激诱发心律不齐的机理可以在各向异性系数不相等的双畴模型的框架内得到解释。相比之下,所研究的机制都没有提供足够的解释说明通过交叉场刺激来感应转子。因此,本研究强调需要进一步的实验和理论研究,以解释磁场刺激的机理。

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