Crucial conventional patch-clamp approaches to investigate cellular electrophysiology suffer from low-throughput and require considerable experimenter expertise. Automated patch-clamp (APC) approaches are more experimenter independent and offer high-throughput, but by design are predominantly limited to assays containing small, homogenous cells. In order to enable high-throughput APC assays on larger cells such as native cardiomyocytes isolated from mammalian hearts, we employed a fixed-well APC plate format. A broad range of detailed electrophysiological parameters including action potential, L-type calcium current and basal inward rectifier current were reliably acquired from isolated swine atrial and ventricular cardiomyocytes using APC. Effective pharmacological modulation also indicated that this technique is applicable for drug screening using native cardiomyocyte material. Furthermore, sequential acquisition of multiple parameters from a single cell was successful in a high throughput format, substantially increasing data richness and quantity per experimental run. When appropriately expanded, these protocols will provide a foundation for effective mechanistic and phenotyping studies of human cardiac electrophysiology. Utilizing scarce biopsy samples, regular high throughput characterization of primary cardiomyocytes using APC will facilitate drug development initiatives and personalized treatment strategies for a multitude of cardiac diseases.
A modern automated patch-clamp approach for high throughput electrophysiology recordings in native cardiomyocytes.
一种用于在天然心肌细胞中进行高通量电生理记录的现代自动化膜片钳方法
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作者:Seibertz Fitzwilliam, Rapedius Markus, Fakuade Funsho E, Tomsits Philipp, Liutkute Aiste, Cyganek Lukas, Becker Nadine, Majumder Rupamanjari, Clauà Sebastian, Fertig Niels, Voigt Niels
| 期刊: | Communications Biology | 影响因子: | 5.100 |
| 时间: | 2022 | 起止号: | 2022 Sep 15; 5(1):969 |
| doi: | 10.1038/s42003-022-03871-2 | 研究方向: | 细胞生物学 |
| 疾病类型: | 心肌炎 | ||
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