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首页> 外文期刊>Frontiers in Cell and Developmental Biology >Optimizing the Direction and Order of the Motion Unveiled the Ability of Conventional Monolayers of Human Induced Pluripotent Stem Cell-Derived Cardiomyocytes to Show Frequency-Dependent Enhancement of Contraction and Relaxation Motion
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Optimizing the Direction and Order of the Motion Unveiled the Ability of Conventional Monolayers of Human Induced Pluripotent Stem Cell-Derived Cardiomyocytes to Show Frequency-Dependent Enhancement of Contraction and Relaxation Motion

机译:优化运动的方向和顺序推出了人诱导的多能干细胞衍生心肌细胞的常规单层的能力,以显示收缩和弛豫运动的频率依赖性增强

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Contractility of the human heart increases as its beating rate is elevated, so-called positive force-frequency relationship; however, human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) have been reported to exert a negative force-frequency relationship. We tested the hypothesis that the regulation of motion directions by electrical pacing and/or oxygen supply may improve the electro-mechanical properties of hiPSC-CMs monolayers. To better evaluate the spatial and temporal relationship between electrical excitation and contractile motion, we simultaneously observed the field potential and motion vector of hiPSC-CMs sheets. Under spontaneous contraction, although an electrical excitation originating from a region propagated unidirectionally over the cell sheet, contraction wave started from multiple sites, and relaxation wave was initiated from a geometric center of hiPSC-CMs sheet. During electrical pacing, contraction and relaxation waves were propagated from the stimulated site. Interestingly, the maximum contraction speed was more increased when the hiPSC-CMs sheet was stimulated at an area relaxation initiated under spontaneous condition. Furthermore, motion vector analysis demonstrated that “positive contraction velocity-frequency relationship” in contraction and “frequency-dependent enhancement of relaxation” were produced in the cell sheet by optimizing the direction and order of the contractile motion with pacing at the relaxation-initiating area. A close analysis of motion vectors along with field potential recording demonstrated that relaxation process consists of fast and slow phases, and suggest that intracellular Ca2+ dynamics may be closely related to functions of Ca2+-ATPase pump and Na+-Ca2+ exchangers. Namely, the slow relaxation phase occurred after the second peak of field potential, suggesting that the slow phase may be associated with extrusion of Ca2+ by Na+-Ca2+ exchangers during repolarization. Increase of oxygen concentration from 20 to 95% as well as β-adrenergic stimulation with isoproterenol accelerated the fast relaxation, suggesting that it could depend on Ca2+ uptake via Ca2+-ATPase during the depolarization phase. The ratio of maximum contraction speed to field potential duration was increased by the β-adrenergic stimulation, indicating the elevated contraction efficiency per Ca2+-influx. Thus, these findings revealed potential ability of conventional monolayers of hiPSC-CMs, which will help apply them to translational study filling the gap between physiological as well as pharmacological studies and clinical practice.
机译:随着其跳动率升高,所谓的正力频率关系,人体的收缩性增加;然而,据报道,人诱导的多能干细胞衍生的心肌细胞(HIPSC-CMS)施加负力频率关系。我们测试了通过电气起搏和/或氧气供应的运动方向调节的假设可以改善HIPSC-CMS单层的电力性能。为了更好地评估电激励和收缩运动之间的空间和时间关系,我们同时观察到HIPSC-CMS板的现场电位和运动矢量。在自发收缩下,尽管源自在细胞片上单向传播的区域的电激励,但从多个位点开始的收缩波和松弛波开始于HIPSC-CMS板的几何中心开始。在电动起搏期间,从刺激的部位繁殖收缩和弛豫波。有趣的是,当在自发条件下发起的区域松弛时刺激HIPSC-CMS板时,最大收缩速度更大。此外,运动载体分析证明,通过优化在松弛启动区域的令人收缩运动的方向和顺序,在细胞片中产生“积极收缩速度频率关系”中的收缩和“频率依赖性增强” 。对运动载体的密切分析以及现场电位记录表明,松弛过程包括快速和慢阶段,并且表明细胞内Ca2 +动力学可能与Ca2 + -AtPase泵和Na + -Ca2 +交换器的功能密切相关。即,在现场电位的第二峰峰后发生缓慢的弛豫阶段,表明缓慢相可以在释放期间通过Na + -Ca2 +交换剂挤出Ca2 +。将氧浓度的增加从20至95%以及用异丙肾上腺素加速β-肾上腺素能刺激加速了快速松弛,表明它可以在去极化阶段期间通过Ca2 + -AtPase取决于Ca2 +摄取。通过β-肾上腺素能刺激增加了最大收缩速度与场电位持续时间的比率,表明每种CA2 + -INOX的收缩效率升高。因此,这些发现揭示了常规单层HIPSC-CMS的潜在能力,这将有助于将它们应用于平移研究,填补生理和药理研究与临床实践之间的差距。

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