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Updated: Nov 23, 2025

Measurement of Heart Contractility in Isolated Adult Human Primary Cardiomyocytes
Published on: August 9, 2022
Adverse effects of hydroxychloroquine and azithromycin on contractility and arrhythmogenicity revealed by human
Andy On-Tik Wong1, Bimal Gurung2, Wing Sum Wong1
1Novoheart, Irvine, California, United States.
Insights
Hydroxychloroquine (HCQ) and azithromycin (AZM) showed cardiac risks in COVID-19 patients. Bioengineered heart tissue revealed AZM negatively impacts contractility, potentially worsened by HCQ, and affects heart rhythm.
Area of Science:
- Cardiology
- Pharmacology
- Biotechnology
Background:
- COVID-19 pandemic necessitates effective treatments.
- Hydroxychloroquine (HCQ) and azithromycin (AZM) were investigated for COVID-19, but their cardiac safety is unclear.
- Direct effects of HCQ and AZM on human cardiac function require detailed investigation.
Purpose of the Study:
- To investigate the direct effects of HCQ and AZM on human cardiac contractility and electrophysiology.
- To elucidate the mechanisms underlying potential cardiac toxicity of HCQ and AZM.
Main Methods:
- Utilized bioengineered human ventricular cardiac tissue strips (hvCTS) and anisotropic sheets (hvCAS) derived from human pluripotent stem cell (hPSC)- ventricular cardiomyocytes (hvCMs).
- Assessed cardiac contractility using hvCTS and electrophysiology, including action potential duration and arrhythmia induction, using hvCAS.
Main Results:
- AZM induced a dose-dependent negative inotropic effect on cardiac contractility, which was exacerbated by HCQ.
- AZM prolonged action potentials and promoted spiral wave formation, indicating arrhythmogenic potential.
- Findings align with clinical reports of QTc prolongation, ventricular arrhythmias, and heart failure associated with HCQ/AZM.
Conclusions:
- HCQ and AZM administration carries significant cardiac risks.
- Bioengineered human cardiac tissue models provide valuable mechanistic insights into drug-induced cardiotoxicity.
- These models serve as a crucial platform for screening the cardiac safety and efficacy of potential COVID-19 therapeutics.
Abstract:
The coronavirus disease 2019 (COVID-19) outbreak caused by severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) has become a global pandemic as declared by World Health Organization (WHO). In the absence of an effective treatment, different drugs with unknown effectiveness, including antimalarial hydroxychloroquine (HCQ), with or without concurrent administration with azithromycin (AZM), have been tested for treating COVID-19 patients with developed pneumonia. However, the efficacy and safety of HCQ and/or AZM have been questioned by recent clinical reports. Direct effects of these drugs on the human heart remain very poorly defined. To better understand the mechanisms of action of HCQ +/- AZM, we employed bioengineered human ventricular cardiac tissue strip (hvCTS) and anisotropic sheet (hvCAS) assays, made with human pluripotent stem cell (hPSC)-derived ventricular cardiomyocytes (hvCMs), which have been designed for measuring cardiac contractility and electrophysiology, respectively. Our hvCTS experiments showed that AZM induced a dose-dependent negative inotropic effect which could be aggravated by HCQ; electrophysiologically, as revealed by the hvCAS platform, AZM prolonged action potentials and induced spiral wave formations. Collectively, our data were consistent with reported clinical risks of HCQ and AZM on QTc prolongation/ventricular arrhythmias and development of heart failure. In conclusion, our study exposed the risks of HCQ/AZM administration while providing mechanistic insights for their toxicity. Our bioengineered human cardiac tissue constructs therefore provide a useful platform for screening cardiac safety and efficacy when developing therapeutics against COVID-19.
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