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Inhibitory effects of class I antiarrhythmic agents on Na+ and Ca2+ currents of human iPS cell-derived cardiomyocytes

Authors :
Sayaka Yonemizu
Keiichiro Masuda
Yasutaka Kurata
Tomomi Notsu
Yuhei Higashi
Kenta Fukumura
Peili Li
Haruaki Ninomiya
Junichiro Miake
Motokazu Tsuneto
Yasuaki Shirayoshi
Ichiro Hisatome
Source :
Regenerative Therapy, Vol 10, Iss , Pp 104-111 (2019)
Publication Year :
2019
Publisher :
Elsevier, 2019.

Abstract

Introduction: Human induced pluripotent stem cells (hiPSCs) harboring cardiac myosin heavy chain 6 promoter can differentiate into functional cardiomyocytes called “iCell cardiomyocytes” under blasticidin treatment condition. While iCell cardiomyocytes are expected to be used for predicting cardiotoxicity of drugs, their responses to antiarrhythmic agents remain to be elucidated. We first examined electrophysiological properties of iCell cardiomyocytes and mRNA levels of ion channels and Ca handling proteins, and then evaluated effects of class I antiarrhythmic agents on their Na+ and Ca2+ currents. Methods: iCell cardiomyocytes were cultured for 8–14 days (38–44 days after inducing their differentiation), according to the manufacturer's protocol. We determined their action potentials (APs) and sarcolemmal ionic currents using whole-cell patch clamp techniques, and also mRNA levels of ion channels and Ca handling proteins by RT-PCR. Effects of three class I antiarrhythmic agents, pirmenol, pilsicainide and mexiletine, on Na+ channel current (INa) and L-type Ca2+ channel current (ICaL) were evaluated by the whole-cell patch clamp. Results: iCell cardiomyocytes revealed sinoatrial node-type (18%), atrial-type (18%) and ventricular-type (64%) spontaneous APs. The maximum peak amplitudes of INa, ICaL, and rapidly-activating delayed-rectifier K+ channel current were −62.7 ± 13.7, −8.1 ± 0.7, and 3.0 ± 1.0 pA/pF, respectively. The hyperpolarization-activated cation channel and inward-rectifier K+ channel currents were observed, whereas the T-type Ca2+ channel or slowly-activating delayed-rectifier K+ channel current was not detectable. mRNAs of Nav1.5, Cav1.2, Kir2.1, HCN4, KvLQT1, hERG and SERCA2 were detected, while that of HCN1, minK or MiRP was not. The class Ia antiarrhythmic agent pirmenol and class Ic agent pilsicainide blocked INa in a concentration-dependent manner with IC50 of 0.87 ± 0.37 and 0.88 ± 0.16 μM, respectively; the class Ib agent mexiletine revealed weak INa block with a higher IC50 of 30.0 ± 3.0 μM. Pirmenol, pilsicainide and mexiletine blocked ICaL with IC50 of 2.00 ± 0.39, 7.7 ± 2.5 and 5.0 ± 0.1 μM, respectively. Conclusions: In iCell cardiomyocytes, INa was blocked by the class Ia and Ic antiarrhythmic agents and ICaL was blocked by all the class I agents within the ranges of clinical concentrations, suggesting their cardiotoxicity. Keywords: iCell cardiomyocytes, class I antiarrhythmic agents, Na+ channel current, L-type Ca2+ channel current

Details

Language :
English
ISSN :
23523204
Volume :
10
Issue :
104-111
Database :
Directory of Open Access Journals
Journal :
Regenerative Therapy
Publication Type :
Academic Journal
Accession number :
edsdoj.f4b98bfa7240ef80fa4eb7f9b92092
Document Type :
article
Full Text :
https://doi.org/10.1016/j.reth.2018.12.002