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Electrophysiological Analysis of human Pluripotent Stem Cell-derived Cardiomyocytes hPSC-CMs Using Multi-electrode Arrays MEAs
Published on: May 12, 2017
Patient-Specific Drug Screening Using a Human Induced Pluripotent Stem Cell Model of Catecholaminergic Polymorphic
Leonid Maizels1, Irit Huber1, Gil Arbel1
1From the Rappaport Faculty of Medicine and Research Institute (L.M., I.H., G.A., A.J.T., A.G., L.G.); and Rambam Health Care Campus; Technion-Institute of Technology; Haifa, Israel (A.K., L.G.).
Background:
Catecholaminergic polymorphic ventricular tachycardia type 2 (CPVT2) results from autosomal recessive CASQ2 mutations, causing abnormal Ca2+-handling and malignant ventricular arrhythmias. We aimed to establish a patient-specific human induced pluripotent stem cell (hiPSC) model of CPVT2 and to use the generated hiPSC-derived cardiomyocytes to gain insights into patient-specific disease mechanism and pharmacotherapy.
Methods And Results:
hiPSC cardiomyocytes were derived from a CPVT2 patient (D307H-CASQ2 mutation) and from healthy controls. Laser-confocal Ca2+ and voltage imaging showed significant Ca2+-transient irregularities, marked arrhythmogenicity manifested by early afterdepolarizations and triggered arrhythmias, and reduced threshold for store overload-induced Ca2+-release events in the CPVT2-hiPSC cardiomyocytes when compared with healthy control cells. Pharmacological studies revealed the prevention of adrenergic-induced arrhythmias by β-blockers (propranolol and carvedilol), flecainide, and the neuronal sodium-channel blocker riluzole; a direct antiarrhythmic action of carvedilol (independent of its α/β-adrenergic blocking activity), flecainide, and riluzole; and suppression of abnormal Ca2+ cycling by the ryanodine stabilizer JTV-519 and carvedilol. Mechanistic insights were gained on the different antiarrhythmic actions of the aforementioned drugs, with carvedilol and JTV-519 (but not flecainide or riluzole) acting primarily through sarcoplasmic reticulum stabilization. Finally, comparable outcomes were found between flecainide and labetalol antiarrhythmic effects in vitro and the clinical results in the same patient.
Conclusions:
These results demonstrate the ability of hiPSCs cardiomyocytes to recapitulate CPVT2 disease phenotype and drug response in the culture dish, to provide novel insights into disease and drug therapy mechanisms, and potentially to tailor patient-specific drug therapy.
Insights
Patient-specific induced pluripotent stem cells model catecholaminergic polymorphic ventricular tachycardia type 2 (CPVT2) arrhythmias. This model accurately predicts drug responses, paving the way for tailored CPVT2 therapies.
Area of Science:
- Cardiovascular Research
- Stem Cell Biology
- Genetics
Background:
- Catecholaminergic polymorphic ventricular tachycardia type 2 (CPVT2) is an inherited arrhythmia disorder.
- It is caused by mutations in the CASQ2 gene, leading to abnormal calcium handling and life-threatening ventricular arrhythmias.
- Current understanding of patient-specific disease mechanisms and treatment is limited.
Purpose of the Study:
- To develop a patient-specific human induced pluripotent stem cell (hiPSC) model for CPVT2.
- To utilize hiPSC-derived cardiomyocytes to investigate disease mechanisms.
- To evaluate patient-specific drug responses and identify potential therapeutic strategies.
Main Methods:
- Generation of hiPSC lines from a CPVT2 patient with a D307H-CASQ2 mutation and healthy controls.
- Characterization of hiPSC-derived cardiomyocytes using laser-confocal Ca2+ and voltage imaging.
- Pharmacological testing of various antiarrhythmic drugs, including beta-blockers, flecainide, riluzole, JTV-519, and carvedilol.
Main Results:
- CPVT2-hiPSC cardiomyocytes exhibited abnormal Ca2+ transients, early afterdepolarizations, and triggered arrhythmias compared to controls.
- Adrenergic-induced arrhythmias were prevented by propranolol, carvedilol, flecainide, and riluzole.
- Carvedilol and JTV-519 demonstrated direct antiarrhythmic effects by stabilizing the sarcoplasmic reticulum, while flecainide and riluzole showed different mechanisms.
- In vitro drug responses correlated with the patient's clinical outcomes.
Conclusions:
- hiPSC-derived cardiomyocytes effectively model CPVT2 phenotype and drug responses.
- This model provides novel insights into CPVT2 pathogenesis and antiarrhythmic drug mechanisms.
- Patient-specific hiPSC models hold promise for tailoring drug therapies for CPVT2.
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