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Interpretation of field potentials measured on a multi electrode array in pharmacological toxicity screening on primary and human pluripotent stem cell-derived cardiomyocytes

机译:对初级和人多能干细胞衍生心肌细胞的药理学毒性筛选中多电极阵列测量的现场电位的解释

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Multi electrode arrays (MEAs) are increasingly used to detect external field potentials in electrically active cells. Recently, in combination with cardiomyocytes derived from human (induced) pluripotent stem cells they have started to become a preferred tool to examine newly developed drugs for potential cardiac toxicity in pre-clinical safety pharmacology. The most important risk parameter is proarrhythmic activity in cardiomyocytes which can cause sudden cardiac death. Whilst MEAs can provide medium- to high-throughput noninvasive assay platform, the translation of a field potential to cardiac action potential (normally measured by low-throughput patch clamp) is complex so that accurate assessment of drug risk to the heart is in practice still challenging. To address this, we used computational simulation to study the theoretical relationship between aspects of the field potential and the underlying cardiac action potential. We then validated the model in both primary mouse- and human pluripotent (embryonic) stem cell-derived cardiomyocytes showing that field potentials measured in MEAs could be converted to action potentials that were essentially identical to those determined directly by electro-physiological patch clamp. The method significantly increased the amount of information that could be extracted from MEA measurements and thus combined the advantages of medium/high throughput with more informative readouts. We believe that this will benefit the analysis of drug toxicity screening of cardiomyocytes using in time and accuracy. (C) 2017 The Authors. Published by Elsevier Inc. This is an open access article under the CC BY license
机译:多电极阵列(MEAS)越来越多地用于检测电活动细胞中的外部场电位。最近,与衍生自人(诱导)多能干细胞的心肌细胞组合,它们已经开始成为临床安全药理学中新开发的用于潜在心肌毒性的优选工具。最重要的风险参数是心肌细胞的预训练活性,这可能导致心脏猝死。虽然MEAS可以提供​​中到高通量的非侵入性测定平台,但是对心脏动作电位的现场电位的翻译(通常通过低通量膜片夹测量)是复杂的,以便准确评估心脏的药物风险在实践中具有挑战性的。为了解决这个问题,我们使用计算模拟来研究现场潜力的各个方面与潜在的心脏动作潜力之间的理论关系。然后,我们验证了初级鼠标和人类多能(胚胎)干细胞衍生的心肌细胞中的模型,表明在MEA中测量的现场电位可以转换成基本上与直接通过电生理膜片夹确定的电位的动作电位。该方法显着增加了可以从MEA测量中提取的信息量,从而将介质/高吞吐量的优点与更具信息丰富的读数组合。我们认为,随着时间的准确性,这将有利于对心肌细胞的药物毒性筛选分析。 (c)2017作者。由elsevier Inc.发布这是CC下的公开访问文章

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