B. Xu, S. Binczak, S. Jacquir, O. Pont, H. Yahia
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引用次数: 1

摘要

采用体外实验模型和多电极阵列(MEA)技术对心律失常进行研究。该平台作为心脏细胞电活动和信号处理/动力学分析的中介。通过它可以获得心脏细胞的细胞外电位,从而实现实时监测/分析。由于MEA在矩形区域内分配了60个电极/通道,因此可以在多个站点上进行实时监测和信号采集。体外实验模型(取自新生大鼠心脏的心肌细胞)直接在MEA上制备。这种精心制备的培养物具有与人类心脏细胞相似的参数。为了区分心律失常,采用了复杂性分析方法(近似熵、ApEn和样本熵、SampEn),特别是在考虑噪声的情况下。结果表明,在心律失常的情况下,ApEn和SampEn的熵降低到原来的50%左右。这两个参数都可以作为判别心律失常的因素。此外,从生物物理学的角度来看,这50%的熵的减少与之前报道的心律失常的分岔(周期,吸引子等)一致。它再次支持了心律失常时心脏进入混沌状态的假说,有助于更好地理解心房颤动的机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Complexity analysis of experimental cardiac arrhythmia
To study the cardiac arrhythmia, an in vitro experimental model and Multielectrodes Array (MEA) are used. This platform serves as an intermediary of the electrical activities of cardiac cells and the signal processing / dynamics analysis. Through it the extracellular potential of cardiac cells is acquired, allowing a real-time monitoring / analyzing. Since MEA has 60 electrodes / channels dispatched in a rectangular region, it allows real-time monitoring and signal acquisition on multiple sites. The in vitro experimental model (cardiomyocytes cultures from newborn rats'heart) is directly prepared on the MEA. This carefully prepared culture has similar parameters as cell of human's heart. In order to discriminate the cardiac arrhythmia, complexity analysis methods (Approximate Entropy, ApEn and Sample Entropy, SampEn) are used especially taking into account noise. The results showed that, in case of arrhythmia, the ApEn and SampEn are reduced to about 50% of the original entropies. Both parameters could be used as factors to discriminate arrhythmia. Moreover, from a point of view of biophysics this decrease 50% of Entropy coincides with the bifurcation (periods, attractors etc.) in case of arrhythmia which have been reported previously. It supports once more the hypothesis that in case of cardiac arrhythmia, the heart entered into chaos which helps to better understand the mechanism of atrial fibrillation.
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