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微器件平台用于在受控孵育箱环境中连续测量人诱导多能干细胞心肌细胞的收缩性、搏动率和搏动节律。

Microdevice Platform for Continuous Measurement of Contractility, Beating Rate, and Beating Rhythm of Human-Induced Pluripotent Stem Cell-Cardiomyocytes inside a Controlled Incubator Environment.

机构信息

Department of Mechanical and Industrial Engineering , University of Toronto , Toronto ON M5S 3G8 , Canada.

Hospital for Sick Children , Toronto ON M5G 1X8 , Canada.

出版信息

ACS Appl Mater Interfaces. 2018 Jun 27;10(25):21173-21183. doi: 10.1021/acsami.8b05407. Epub 2018 Jun 15.

DOI:10.1021/acsami.8b05407
PMID:29874032
Abstract

The heart completes a complex set of tasks, including the initiation or propagation of an electrical signal with regularity (proper heart rate and rhythm) and generating sufficient force of contraction (contractility). Probing mechanisms of heart diseases and quantifying drug efficacies demand a platform that is capable of continuous operation inside a cell incubator for long-term measurement of cardiomyocyte (CM) monolayers. Here, we report a microdevice array that is capable of performing continuous, long-term (14 days) measurement of contractility, beating rate, and beating rhythm in a monolayer of human-induced pluripotent stem cell-CMs (hiPSC-CMs). The device consists of a deformable membrane with embedded carbon nanotube (CNT)-based strain sensors. Contraction of the hiPSC-CMs seeded on the membrane induces electrical resistance change of the CNT strain sensor. Continuously reading the sensor signals revealed that hiPSC-CMs started to beat from day 2 and plateaued on day 5. Average contractile stress generated by a monolayer of hiPSC-CMs was determined to be 2.34 ± 0.041 kPa with a beating rate of 1.17 ± 0.068 Hz. The device arrays were also used to perform comprehensive measurement of the beating rate, rhythm, and contractility of the hiPSC-CMs and quantify the cell responses to different concentrations of agonists and antagonists, which altered the average contractile stress to the range of 1.15 ± 0.13 to 3.96 ± 0.53 kPa. The continuous measurement capability of the device arrays also enabled the generation of Poincaré plots for revealing subtle changes in the beating rhythm of hiPSC-CMs under different drug treatments.

摘要

心脏完成了一系列复杂的任务,包括有规律地启动或传播电信号(正常的心率和节律)以及产生足够的收缩力(收缩性)。探究心脏病的机制和量化药物疗效需要一个能够在细胞培养箱中连续运行的平台,以便长期测量心肌细胞(CM)单层。在这里,我们报告了一种微器件阵列,该阵列能够在人诱导多能干细胞-CM(hiPSC-CM)的单层上进行连续的、长期(14 天)的收缩性、跳动率和跳动节律的测量。该设备由一个带有嵌入式碳纳米管(CNT)基应变传感器的可变形膜组成。接种在膜上的 hiPSC-CM 的收缩会引起 CNT 应变传感器的电阻变化。连续读取传感器信号表明,hiPSC-CM 从第 2 天开始跳动,并在第 5 天达到稳定状态。通过测量单层 hiPSC-CM 产生的平均收缩力,发现其为 2.34±0.041 kPa,跳动率为 1.17±0.068 Hz。该器件阵列还用于全面测量 hiPSC-CM 的跳动率、节律和收缩性,并量化细胞对不同浓度激动剂和拮抗剂的反应,这将平均收缩力改变到 1.15±0.13 到 3.96±0.53 kPa 的范围内。该设备阵列的连续测量能力还能够生成 Poincaré 图,以揭示在不同药物处理下 hiPSC-CM 跳动节律的细微变化。

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