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Advanced Ring-Shaped Microelectrode Assay Combined with Small Rectangular Electrode for Quasi-In vivo Measurement of Cell-to-Cell Conductance in Cardiomyocyte Network

机译:先进的环形微电极测定与小矩形电极相结合,用于心肌细胞网络中细胞间电导率的拟体内测量

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摘要

To predict the risk of fatal arrhythmia induced by cardiotoxicity in the highly complex human heart system, we have developed a novel quasi-in vivo electrophysiological measurement assay, which combines a ring-shaped human cardiomyocyte network and a set of two electrodes that form a large single ring-shaped electrode for the direct measurement of irregular cell-to-cell conductance occurrence in a cardiomyocyte network, and a small rectangular microelectrode for forced pacing of cardiomyocyte beating and for acquiring the field potential waveforms of cardiomyocytes. The advantages of this assay are as follows. The electrophysiological signals of cardiomyocytes in the ring-shaped network are superimposed directly on a single loop-shaped electrode, in which the information of asynchronous behavior of cell-to-cell conductance are included, without requiring a set of huge numbers of microelectrode arrays, a set of fast data conversion circuits, or a complex analysis in a computer. Another advantage is that the small rectangular electrode can control the position and timing of forced beating in a ring-shaped human induced pluripotent stem cell (hiPS)-derived cardiomyocyte network and can also acquire the field potentials of cardiomyocytes. First, we constructed the human iPS-derived cardiomyocyte ring-shaped network on the set of two electrodes, and acquired the field potential signals of particular cardiomyocytes in the ring-shaped cardiomyocyte network during simultaneous acquisition of the superimposed signals of whole-cardiomyocyte networks representing cell-to-cell conduction. Using the small rectangular electrode, we have also evaluated the response of the cell network to electrical stimulation. The mean and SD of the minimum stimulation voltage required for pacing (V_(Min)) at the small rectangular electrode was 166±74 mV, which is the same as the magnitude of amplitude for the pacing using the ring-shaped electrode (179±33 mV). The results showed that the addition of a small rectangular electrode into the ring-shaped electrode was effective for the simultaneous measurement of whole-cell-network signals and single-cell/small-cluster signals on a local site in the cell network, and for the pacing by electrical stimulation of cardiomyocyte networks.
机译:为了预测高度复杂的人心脏系统中由心脏毒性引起的致命性心律失常的风险,我们开发了一种新型的准体内电生理测量方法,该方法结合了环形人心肌细胞网络和一组形成大电极的两个电极单个环形电极用于直接测量心肌细胞网络中不规则的细胞间电导发生,还有一个小的矩形微电极用于强制起搏心肌搏动并获取心肌的场电波形。该测定法的优点如下。环形网络中的心肌细胞的电生理信号直接叠加在单个环形电极上,其中包括细胞间电导的异步行为信息,而无需大量的微电极阵列。一组快速数据转换电路或计算机中的复杂分析。另一个优点是,小的矩形电极可以控制在环状人诱导的多能干细胞(hiPS)衍生的心肌细胞网络中强迫跳动的位置和时间,并且还可以获取心肌细胞的场势。首先,我们在两个电极的集合上构建了人类iPS来源的心肌环形网络,并在同时获取代表整个心肌细胞网络的叠加信号的同时,获取了环形心肌网络中特定心肌细胞的场电信号细胞间传导。使用小的矩形电极,我们还评估了细胞网络对电刺激的响应。在小矩形电极上起搏所需的最小刺激电压(V_(Min))的平均值和SD为166±74 mV,与使用环形电极起搏的幅度幅值相同(179± 33 mV)。结果表明,在环形电极中添加一个小的矩形电极对于同时测量整个蜂窝网络信号以及在蜂窝网络本地站点上的单蜂窝/小集群信号是有效的。通过电刺激心肌细胞网络进行起搏。

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  • 来源
    《Japanese journal of applied physics》 |2013年第6issue2期|06GK07.1-06GK07.7|共7页
  • 作者单位

    Department of Biomedical Information, Division of Biosystems, Institute of Biomaterials and Bioengineering,Tokyo Medical and Dental University, Chiyoda, Tokyo 101-0062, Japan;

    Department of Biomedical Information, Division of Biosystems, Institute of Biomaterials and Bioengineering,Tokyo Medical and Dental University, Chiyoda, Tokyo 101-0062, Japan;

    Department of Biomedical Information, Division of Biosystems, Institute of Biomaterials and Bioengineering,Tokyo Medical and Dental University, Chiyoda, Tokyo 101-0062, Japan;

    Department of Biomedical Information, Division of Biosystems, Institute of Biomaterials and Bioengineering,Tokyo Medical and Dental University, Chiyoda, Tokyo 101-0062, Japan;

    Department of Biomedical Information, Division of Biosystems, Institute of Biomaterials and Bioengineering,Tokyo Medical and Dental University, Chiyoda, Tokyo 101-0062, Japan;

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