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Spontaneous termination of chaotic spiral wave dynamics in human cardiac ion channel models

机译:人类心脏离子通道模型中混沌螺旋波动力学的自发终止

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摘要

Chaotic spiral or scroll wave dynamics can be found in diverse systems. In cardiac dynamics, spiral or scroll waves of electrical excitation determine the dynamics during life-threatening arrhythmias like ventricular fibrillation. In numerical studies it was found that chaotic episodes of spiral and scroll waves can be transient, thus they terminate spontaneously. We show in this study that this behavior can also be observed using models which describe the ion channel dynamics of human cardiomyocytes (Bueno-Orovio-Cherry-Fenton model and the Ten Tusscher-Noble-Noble-Panfilov model). For both models we find that the average lifetime of the chaotic transients grows exponentially with the system size. With this behavior, we classify the systems into the group of type-II supertransients. We observe a significant difference of the breakup behavior between the models, which results in a distinct dynamics during the final phase just before the termination. The observation of a (temporally) stable single-spiral state affects the prevailing description of the dynamics of type-II supertransients as being “quasi-stationary” and also the feasibility of predicting the spontaneous termination of the spiral wave dynamics. In the long term, the relation between the breakup behavior of spiral waves and properties of chaotic transients like predictability or average transient lifetime may contribute to an improved understanding and classification of cardiac arrhythmias.
机译:混沌螺旋或涡旋波动力学可以在各种系统中找到。在心脏动力学中,电刺激的螺旋波或涡旋波确定了危及生命的心律不齐(例如心室纤颤)过程中的动力学。在数值研究中,发现螺旋波和涡旋波的混沌发作可以是瞬态的,因此它们是自发终止的。我们在这项研究中表明,使用描述人类心肌细胞离子通道动力学的模型(Bueno-Orovio-Cherry-Fenton模型和Tusscher-Noble-Noble-Panfilov模型),也可以观察到这种行为。对于这两个模型,我们发现混沌瞬态的平均寿命随系统大小成指数增长。通过这种行为,我们将系统分类为II型超瞬态。我们观察到模型之间的破裂行为存在显着差异,这在终止之前的最后阶段导致了明显的动力学变化。 (暂时)稳定的单螺旋状态的观察影响了对II型超瞬态动力学的普遍描述为“准平稳”,并且影响了预测螺旋波动力学的自发终止的可行性。从长远来看,螺旋波的破裂行为与混沌瞬态特性(如可预测性或平均瞬态寿命)之间的关系可能有助于改善对心律不齐的理解和分类。

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