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使用传统和新型体外试验进行致心律失常风险评估。

Proarrhythmic risk assessment using conventional and new in vitro assays.

作者信息

Goineau Sonia, Castagné Vincent

机构信息

Porsolt, Z.A. de Glatigné, 53940 Le Genest-Saint-Isle, France.

Porsolt, Z.A. de Glatigné, 53940 Le Genest-Saint-Isle, France.

出版信息

Regul Toxicol Pharmacol. 2017 Aug;88:1-11. doi: 10.1016/j.yrtph.2017.05.012. Epub 2017 May 12.

DOI:10.1016/j.yrtph.2017.05.012
PMID:28506844
Abstract

Drug-induced QT prolongation is a major safety issue in the drug discovery process. This study was conducted to assess the electrophysiological responses of four substances using established preclinical assays usually used in regulatory studies (hERG channel or Purkinje fiber action potential) and a new assay (human-induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs)-field potential). After acute exposure, moxifloxacin and dofetilide concentration-dependently decreased I amplitude (IC values: 102 μM and 40 nM, respectively) and lengthened action potential (100 μM moxifloxacin: +23% and 10 nM dofetilide: +18%) and field potential (300 μM moxifloxacin: +76% and 10 nM dofetilide: +38%) durations. Dofetilide starting from 30 nM induced arrhythmia in hiPSC-CMs. Overnight application of pentamidine (10 and 100 μM) and arsenic (1 and 10 μM) decreased I, whereas they were devoid of effects after acute application. Long-term pentamidine incubation showed a time- and concentration-dependent effect on field potential duration. In conclusion, our data suggest that hiPSC-CMs represent a fully functional cellular electrophysiology model which may significantly improve the predictive validity of in vitro safety studies. Thereafter, lead candidates may be further investigated in patch-clamp assays for mechanistic studies on individual ionic channels or in a multicellular Purkinje fiber preparation for confirmatory studies on cardiac conduction.

摘要

药物诱导的QT间期延长是药物研发过程中的一个主要安全问题。本研究旨在使用监管研究中常用的既定临床前检测方法(hERG通道或浦肯野纤维动作电位)和一种新的检测方法(人诱导多能干细胞衍生的心肌细胞(hiPSC-CMs)-场电位)来评估四种物质的电生理反应。急性暴露后,莫西沙星和多非利特浓度依赖性地降低I电流幅度(IC值分别为102 μM和40 nM),延长动作电位(100 μM莫西沙星:增加23%,10 nM多非利特:增加18%)和场电位持续时间(300 μM莫西沙星:增加76%,10 nM多非利特:增加38%)。多非利特从30 nM开始在hiPSC-CMs中诱导心律失常。喷他脒(10和100 μM)和砷(1和10 μM)过夜应用可降低I电流,而急性应用后则无影响。长期喷他脒孵育对场电位持续时间显示出时间和浓度依赖性效应。总之,我们的数据表明,hiPSC-CMs代表了一个功能完整的细胞电生理模型,这可能会显著提高体外安全性研究的预测有效性。此后,可在膜片钳检测中对候选先导化合物进行进一步研究,以对单个离子通道进行机制研究,或在多细胞浦肯野纤维制剂中进行心脏传导的验证性研究。

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