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提高 hiPSC 衍生心肌细胞的功能成熟度,以评估正性肌力化合物。

Enhancing the functional maturity of hiPSC-derived cardiomyocytes to assess inotropic compounds.

机构信息

Agilent Technologies, San Diego, CA 92121, USA.

Medical College of Wisconsin, Milwaukee, WI 53226, USA.

出版信息

J Pharmacol Toxicol Methods. 2023 Sep-Oct;123:107282. doi: 10.1016/j.vascn.2023.107282. Epub 2023 Jul 6.

DOI:10.1016/j.vascn.2023.107282
PMID:37419294
Abstract

Human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) present an attractive in vitro platform to model safety and toxicity assessments-notably screening pro-arrhythmic compounds. The utility of the platform is stymied by a hiPSC-CM contractile apparatus and calcium handling mechanism akin to fetal phenotypes, evidenced by a negative force-frequency relationship. As such, hiPSC-CMs are limited in their ability to assess compounds that modulate contraction mediated by ionotropic compounds (Robertson, Tran, & George, 2013). To address this limitation, we utilize Agilent's xCELLigence Real-Time Cell Analyzer ePacer (RTCA ePacer) to enhance hiPSC-CM functional maturity. A continuous, progressive increase of electrical pacing is applied to hiPSC-CMs for up to 15 days. Contraction and viability are recorded by measurement of impedance using the RTCA ePacer. Our data confirms hiPSC-CMs inherently demonstrate a negative impedance amplitude frequency that is reversed after long-term electrical pacing. The data also indicate positive inotropic compounds increase the contractility of paced cardiomyocytes and calcium handling machinery is improved. Increased expression of genes critical to cardiomyocyte maturation further underscores the maturity of paced cells. In summary, our data suggest the application of continuous electrical pacing can functionally mature hiPSC-CMs, enhancing cellular response to positive inotropic compounds and improving calcium handling. SUMMARY: Long-term electrical stimulation of hiPSC-CM leads to functional maturation enabling predictive assessment of inotropic compounds.

摘要

人诱导多能干细胞衍生的心肌细胞(hiPSC-CMs)为安全性和毒性评估提供了一个有吸引力的体外平台,特别是筛选致心律失常化合物。该平台的实用性受到 hiPSC-CM 收缩装置和钙处理机制的阻碍,类似于胎儿表型,这表现为负力频率关系。因此,hiPSC-CMs 在评估通过离子型化合物调节收缩的化合物方面能力有限(Robertson、Tran 和 George,2013)。为了解决这个限制,我们利用安捷伦的 xCELLigence 实时细胞分析仪 ePacer(RTCA ePacer)来增强 hiPSC-CM 的功能成熟度。对 hiPSC-CMs 施加连续的、渐进的电起搏,最长可达 15 天。通过使用 RTCA ePacer 测量阻抗来记录收缩和活力。我们的数据证实,hiPSC-CMs 固有地表现出负阻抗幅度频率,在长期电起搏后会反转。数据还表明,正性肌力化合物可增加起搏心肌细胞的收缩性,改善钙处理机制。关键的心肌细胞成熟基因的表达增加进一步强调了起搏细胞的成熟度。总之,我们的数据表明,连续电刺激可使 hiPSC-CMs 功能成熟,增强对正性肌力化合物的细胞反应,并改善钙处理。总结:长期电刺激 hiPSC-CM 可使其功能成熟,从而能够预测正性肌力化合物的作用。

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Injection of I through dynamic clamp can make all the difference in patch-clamp studies on hiPSC-derived cardiomyocytes.通过动态钳位注入I对人诱导多能干细胞衍生心肌细胞的膜片钳研究至关重要。
Front Physiol. 2023 Dec 12;14:1326160. doi: 10.3389/fphys.2023.1326160. eCollection 2023.