Effects of Electrical Stimulation on hiPSC-CM Responses to Classic Ion Channel Blockers
Feng Wei1,2, Marc Pourrier3, David G Strauss4
1Division of Systems Biology, National Center for Toxicological Research, Food and Drug Administration, Jefferson, Arkansas.
Insights
Electrical pacing of human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) improves drug safety prediction by reducing variability and revealing rate-dependent effects, enhancing cardiac electrophysiology assessments.
Area of Science:
- Cardiovascular Research
- Stem Cell Biology
- Pharmacology
Background:
- Human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) are valuable for predicting drug-induced proarrhythmia.
- Spontaneous beating of hiPSC-CMs introduces variability and confounds data interpretation.
- Controlled pacing can standardize hiPSC-CMs for more reliable drug safety testing.
Purpose of the Study:
- To validate electrical pacing (E-pacing) of hiPSC-CMs for high-throughput cardiac safety assays.
- To compare hiPSC-CM responses to ion channel blockers under spontaneous and paced conditions.
- To assess the impact of pacing on drug effect evaluation in hiPSC-CMs.
Main Methods:
- Utilized microelectrode array technology to compare hiPSC-CMs under spontaneous beating and E-pacing.
- Exposed hiPSC-CMs to classic cardiac ion channel blockers.
- Employed optogenetic pacing and current clamp recordings at various frequencies.
Main Results:
- E-pacing reduced assay variability compared to spontaneous beating.
- Limited changes in field potential duration were observed with pacemaker channel block under pacing.
- Reverse rate dependence of ion channel blockers on field potential duration was revealed by pacing.
- Pacing identified rate-dependent sodium channel block in hiPSC-CMs, consistent with adult cardiomyocytes.
Conclusions:
- E-pacing enables more accurate rate- and concentration-dependent drug effect evaluations.
- Analyzing hiPSC-CMs under both spontaneous and paced conditions enhances cardiac electrophysiology assessment.
- Pacing improves the utility of hiPSC-CMs for drug safety and cardiac electrophysiology studies.
Abstract:
Human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) hold great potential for personalized cardiac safety prediction, particularly for that of drug-induced proarrhythmia. However, hiPSC-CMs fire spontaneously and the variable beat rates of cardiomyocytes can be a confounding factor that interferes with data interpretation. Controlling beat rates with pacing may reduce batch and assay variations, enable evaluation of rate-dependent drug effects, and facilitate the comparison of results obtained from hiPSC-CMs with those from adult human cardiomyocytes. As electrical stimulation (E-pacing) of hiPSC-CMs has not been validated with high-throughput assays, herein, we compared the responses of hiPSC-CMs exposed with classic cardiac ion channel blockers under spontaneous beating and E-pacing conditions utilizing microelectrode array technology. We found that compared with spontaneously beating hiPSC-CMs, E-pacing: (1) reduced overall assay variabilities, (2) showed limited changes of field potential duration to pacemaker channel block, (3) revealed reverse rate dependence of multiple ion channel blockers on field potential duration, and (4) eliminated the effects of sodium channel block on depolarization spike amplitude and spike slope due to a software error in acquiring depolarization spike at cardiac pacing mode. Microelectrode array optogenetic pacing and current clamp recordings at various stimulation frequencies demonstrated rate-dependent block of sodium channels in hiPSC-CMs as reported in adult cardiomyocytes. In conclusion, pacing enabled more accurate rate- and concentration-dependent drug effect evaluations. Analyzing responses of hiPSC-CMs under both spontaneously beating and rate-controlled conditions may help better assess the effects of test compounds on cardiac electrophysiology and evaluate the value of the hiPSC-CM model.
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