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April 15, 2026Cardiology Research and Practice0 citationsOpen Access

Clinically Relevant Doses of Remimazolam Modulate Cardiac Electrophysiology: Late Repolarization Prolongation and Increased Conduction Dispersion With Preserved QTc

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ZWZijun WangYCYing CaoGSGao Jian Su

Key Result

High-dose remimazolam (3 mg/kg/h) prolonged action potential duration at 90% repolarization (118.94 vs 107.93 ms, p<0.001) and increased conduction dispersion while preserving QTc.

Key Points

  • To assess the cardiac electrophysiologic effects of remimazolam at clinically relevant doses.
  • Evaluated Langendorff-perfused guinea pig hearts and hiPSC-derived cardiomyocytes.
  • Conducted surface ECG, multielectrode mapping, optical mapping, and whole-cell patch-clamp.
  • Assessed effects of remimazolam at doses of 0, 1, 2, and 3 mg/kg/h.
  • High-dose remimazolam prolonged PR interval and T-wave duration significantly.
  • QT and QTc intervals remained unchanged across doses.
  • Conduction velocity decreased and conduction dispersion increased at higher doses.

Structured PICO

Does remimazolam modulate cardiac electrophysiology in preclinical models?

P
Population
Langendorff-perfused guinea pig hearts and human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs)
I
Intervention
Remimazolam (1, 2, 3 mg/kg/h in guinea pig hearts; 1500 ng/mL in hiPSC-CMs)
C
Comparator
Control (0 mg/kg/h)
O
Outcome
Cardiac electrophysiologic parameters including PR interval, T-wave duration, QT/QTc interval, activation time, conduction dispersion, conduction velocity, APD90, and CTD90surrogate

Remimazolam at clinically relevant high exposures prolongs late repolarization and increases conduction heterogeneity despite stable QTc, indicating a potential arrhythmogenic risk.

Main Result

Absolute Event Rate: 118.94% vs 107.93%

p-value: p=<0.001

Abstract

Background Remimazolam, an ultra‐short‐acting benzodiazepine with rapid metabolism and cardiovascular stability, is increasingly used for anesthesia, yet its cardiac electrophysiologic effects are incompletely characterized. Methods We conducted a multimodal evaluation in Langendorff‐perfused guinea pig hearts and human induced pluripotent stem cell‐derived cardiomyocytes (hiPSC‐CMs), using surface electrocardiogram (ECG), multielectrode mapping, optical mapping, and whole‐cell patch‐clamp across remimazolam doses (0, 1, 2, 3 mg/kg/h). Results High‐dose remimazolam (3 mg/kg/h) prolonged the PR interval ( p = 0.027), and T‐wave duration was prolonged at 2 and 3 mg/kg/h ( p = 0.017 and p 0.1). Multielectrode mapping showed prolonged activation time at 2 and 3 mg/kg/h versus NC ( p = 0.02 and 0.003) and increased conduction dispersion at 2 and 3 mg/kg/h ( p = 0.0193 and 0.0101). Conduction velocity (CV) was reduced at 3 mg/kg/h compared with NC and 1 mg/kg/h ( p = 0.01 and 0.02). Optical mapping demonstrated prolonged action potential duration at 90% repolarization (APD 90 ) (NC: 107.93 ± 0.63 ms vs 3 mg/kg/h: 118.94 ± 1.83 ms, p 0.05). Conclusion These findings indicate that at higher clinically relevant exposures, remimazolam selectively lengthens late repolarization and increases conduction heterogeneity—features consistent with an arrhythmogenic substrate—while QT and QTc remains stable, supporting cautious use and ECG monitoring in at‐risk populations.

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Cite This Study

Wang et al. (2026) studied this question. Remimazolam vs. Negative control (0 mg/kg/h) was evaluated on Action potential duration at 90% repolarization (APD90) (p=<0.001). High-dose remimazolam (3 mg/kg/h) prolonged action potential duration at 90% repolarization (118.94 vs 107.93 ms, p<0.001) and increased conduction dispersion while preserving QTc.

synapsesocial.com/papers/69df2a99e4eeef8a2a6afa52https://doi.org/10.1155/crp/9479974
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