Goodrow Robert J, Desai Suveer, Treat Jacqueline A, Panama Brian K, Desai Mayurika, Nesterenko Vladislav V, Cordeiro Jonathan M
Department of Experimental Cardiology, Masonic Medical Research Laboratory, Utica, NY 13501, USA.
Department of Experimental Cardiology, Masonic Medical Research Laboratory, Utica, NY 13501, USA.
J Pharmacol Toxicol Methods. 2018 Mar-Apr;90:19-30. doi: 10.1016/j.vascn.2017.11.001. Epub 2017 Nov 8.
Human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) are used for safety pharmacology and to investigate genetic diseases affecting cardiac ion channels. It is unclear whether adult myocytes or hiPSC-CMs are the better platform for cardiac safety pharmacology. We examined the biophysical and molecular properties of I in adult myocytes and hiPSC-CMs.
hiPSC-CMs were plated at low density. Atrial and ventricular cells were obtained from dog hearts. Whole cell patch clamp was used to record I.
Voltage clamp recordings showed a large I in all three cell types but different densities. Small differences in steady-state inactivation and recovery from inactivation were noted in the three cell types. Application of lidocaine to the three cell types showed a similar pattern of block of I under voltage clamp; however, lidocaine produced different effects on AP waveform under current clamp. AP clamp experiments showed that application of ventricular or atrial cell waveforms to the same hiPSC-CM elicited a large I while application of a sinoatrial node waveform elicited no I. Molecular analysis of Na channel subunits showed SCN5A and SCN1B-4B were expressed in adult cells and iPSC-CMs. However, iPSC-CMs express both fetal (exon 6A) and adult (exon 6) isoforms of SCN5A.
There are major differences in I density and smaller differences in other biophysical properties of I in adult atrial, ventricular, and hiPSC-CMs. The depolarized maximum diastolic potential coupled with the presence of phase 4 depolarization limits the contribution of I in hiPSC-CM action potentials. Our results suggest that hiPSC-CMs may be useful for drug screening of Na channel inhibitors under voltage clamp but not current clamp.
人诱导多能干细胞衍生的心肌细胞(hiPSC-CMs)用于安全药理学研究以及调查影响心脏离子通道的遗传疾病。目前尚不清楚成人心肌细胞或hiPSC-CMs哪个是心脏安全药理学的更佳平台。我们研究了成人心肌细胞和hiPSC-CMs中I的生物物理和分子特性。
将hiPSC-CMs以低密度接种。从犬心脏获取心房和心室细胞。采用全细胞膜片钳记录I。
电压钳记录显示,所有三种细胞类型中均存在较大的I,但密度不同。在三种细胞类型中,稳态失活和失活恢复存在微小差异。对三种细胞类型施加利多卡因,在电压钳下显示出相似的I阻断模式;然而,在电流钳下,利多卡因对动作电位波形产生不同影响。动作电位钳实验表明,将心室或心房细胞波形施加于同一hiPSC-CM会引发较大的I,而施加窦房结波形则不会引发I。钠通道亚基的分子分析显示,SCN5A和SCN1B-4B在成体细胞和iPSC-CMs中均有表达。然而,iPSC-CMs同时表达SCN5A的胎儿型(外显子6A)和成人型(外显子6)异构体。
成人心房、心室和hiPSC-CMs中I密度存在主要差异,I的其他生物物理特性存在较小差异。去极化的最大舒张电位加上4期去极化的存在限制了I在hiPSC-CM动作电位中的作用。我们的结果表明,hiPSC-CMs可能有助于在电压钳而非电流钳下对钠通道抑制剂进行药物筛选。