Variable Expressivity in Long QT Syndrome Type 2 Rabbits Defines a Low Threshold for Therapeutic I Kr Restoration

Long QT syndrome type 2 (LQT2) is caused by pathogenic variants in the hERG potassium channel, resulting in QT prolongation, polymorphic ventricular tachycardia (pVT), and sudden cardiac death. We previously developed a transgenic LQT2 rabbit model that recapitulates the human disease and segregates into two phenotypically distinct lines, LQT2A and LQT2G. Using optical mapping and cardiomyocyte patch clamp, we investigated the electrophysiological basis of variable disease expressivity and its potential future implications for gene therapy. LQT2G hearts were highly arrhythmogenic, with isoproterenol inducing frequent premature ventricular contractions and pVT, whereas LQT2A hearts required additional I Kr blockade to reliably trigger arrhythmias. Patch clamp recordings revealed I Kr expression in 21% of LQT2A cardiomyocytes at near-wild-type current density, compared with only 5.5% of LQT2G cells exhibiting low I Kr . Computer simulations demonstrated that restoration of I Kr in >23% of cardiomyocytes fully suppressed early afterdepolarizations through electrotonic coupling. To assess achievable transgene expression, we designed a novel minimally invasive gene delivery method for rabbits. To this end, neonatal wild-type rabbits received three different doses of AAV9 encoding the red-fluorescent reporter mKate2 via jugular vein injection, resulting in viral-load-dependent, regionally distributed mosaic cardiac expression reaching approximately 20%. However, high-dose intravenous AAV9 delivery was associated with dose-dependent hindlimb weakness and dorsal root ganglia pathology, indicating that this administration route is not suitable in rabbits despite achieving biologically sufficient levels of cardiac transduction. Our experimental observations and computational modeling identify ~20% as a plausible range for effective I Kr restoration, generating a testable therapeutic hypothesis.

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Journal
American Journal of Physiology-Heart and Circulatory Physiology
Published
2026-09-14
DOI
https://doi.org/10.1152/ajpheart.00154.2026
Primary Topic
Cardiac electrophysiology and arrhythmias
Type
article
Field-Weighted Citation Impact
0.00

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article

Variable Expressivity in Long QT Syndrome Type 2 Rabbits Defines a Low Threshold for Therapeutic I Kr Restoration

Bum‐Rak Choi, Peter Bronk, Anne Merley, Elif Sengun et al.
American Journal of Physiology-Heart and Circulatory Physiology
Cardiac electrophysiology and arrhythmias
article

Variable Expressivity in Long QT Syndrome Type 2 Rabbits Defines a Low Threshold for Therapeutic I Kr Restoration

Bum‐Rak Choi, Peter Bronk, Anne Merley, Elif Sengun, Yichun Lu, Anatoli Y. Kabakov, Katja E. Odening, Rebecca Martínez-Moreno, Nilüfer N. Turan, Tae Yun Kim, Derrick Kang, Allison Welton, Dennis Tai, Lara Helwig, Susanna Kurnick, Brett Baggett, Gideon Koren, Karim Roder, Matthew Killeen
article en

Abstract

Long QT syndrome type 2 (LQT2) is caused by pathogenic variants in the hERG potassium channel, resulting in QT prolongation, polymorphic ventricular tachycardia (pVT), and sudden cardiac death. We previously developed a transgenic LQT2 rabbit model that recapitulates the human disease and segregates into two phenotypically distinct lines, LQT2A and LQT2G. Using optical mapping and cardiomyocyte patch clamp, we investigated the electrophysiological basis of variable disease expressivity and its potential future implications for gene therapy. LQT2G hearts were highly arrhythmogenic, with isoproterenol inducing frequent premature ventricular contractions and pVT, whereas LQT2A hearts required additional I Kr blockade to reliably trigger arrhythmias. Patch clamp recordings revealed I Kr expression in 21% of LQT2A cardiomyocytes at near-wild-type current density, compared with only 5.5% of LQT2G cells exhibiting low I Kr . Computer simulations demonstrated that restoration of I Kr in >23% of cardiomyocytes fully suppressed early afterdepolarizations through electrotonic coupling. To assess achievable transgene expression, we designed a novel minimally invasive gene delivery method for rabbits. To this end, neonatal wild-type rabbits received three different doses of AAV9 encoding the red-fluorescent reporter mKate2 via jugular vein injection, resulting in viral-load-dependent, regionally distributed mosaic cardiac expression reaching approximately 20%. However, high-dose intravenous AAV9 delivery was associated with dose-dependent hindlimb weakness and dorsal root ganglia pathology, indicating that this administration route is not suitable in rabbits despite achieving biologically sufficient levels of cardiac transduction. Our experimental observations and computational modeling identify ~20% as a plausible range for effective I Kr restoration, generating a testable therapeutic hypothesis.

American Journal of Physiology-Heart and Circulatory Physiology
Universitat de Girona (ES), Brown University (US), University Hospital of Bern (CH), University Medical Center Freiburg (DE), Duke University Hospital (US), BioMarin (United States) (US)
BioMarin Pharmaceutical, National Heart, Lung, and Blood Institute
Openalex Percentile: Top 12%
Cardiac electrophysiology and arrhythmias
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