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Generation and Expansion of Human Cardiomyocytes from Patient Peripheral Blood Mononuclear Cells
Published on: February 12, 2021
Investigating LMNA-Related Dilated Cardiomyopathy Using Human Induced Pluripotent Stem Cell-Derived Cardiomyocytes
Yuval Shemer1, Lucy N Mekies1, Ronen Ben Jehuda1,2
1Department of Physiology, Biophysics and Systems Biology, Rappaport Faculty of Medicine and Rappaport Research Institute, Technion-Israel Institute of Technology, Haifa 31096, Israel.
Insights
Induced pluripotent stem cell-derived cardiomyocytes from LMNA-mutated patients reveal electrophysiological abnormalities, offering insights into inherited dilated cardiomyopathy arrhythmias and potential therapeutic targets.
Area of Science:
- Cardiology
- Genetics
- Stem Cell Biology
Background:
- Dilated cardiomyopathy linked to the LMNA gene causes heart enlargement and arrhythmias.
- Investigating cellular mechanisms of LMNA-related heart disease is crucial for therapeutic development.
Observation:
- LMNA-mutated induced pluripotent stem cell-derived cardiomyocytes (iPSC-CMs) exhibit abnormal electrical activity.
- These cells show altered ion channel function, including decreased pacemaker current and increased calcium current.
Findings:
- LMNA-mutated iPSC-CMs display delayed afterdepolarizations and arrhythmias, exacerbated by stimulation.
- Nuclear irregularities and gene expression changes were observed in patient-derived iPSC-CMs.
- Inhibiting the Na+/Ca2+ exchanger reversed arrhythmogenic activity in these cells.
Implications:
- This study elucidates cellular electrophysiological mechanisms driving arrhythmias in LMNA-related dilated cardiomyopathy.
- LMNA-mutated iPSC-CMs serve as a valuable model for studying disease pathogenesis.
- Findings may guide the development of novel therapeutic strategies targeting ion channel dysfunction.
Abstract:
LMNA-related dilated cardiomyopathy is an inherited heart disease caused by mutations in the LMNA gene encoding for lamin A/C. The disease is characterized by left ventricular enlargement and impaired systolic function associated with conduction defects and ventricular arrhythmias. We hypothesized that LMNA-mutated patients' induced Pluripotent Stem Cell-derived cardiomyocytes (iPSC-CMs) display electrophysiological abnormalities, thus constituting a suitable tool for deciphering the arrhythmogenic mechanisms of the disease, and possibly for developing novel therapeutic modalities. iPSC-CMs were generated from two related patients (father and son) carrying the same E342K mutation in the LMNA gene. Compared to control iPSC-CMs, LMNA-mutated iPSC-CMs exhibited the following electrophysiological abnormalities: (1) decreased spontaneous action potential beat rate and decreased pacemaker current (If) density; (2) prolonged action potential duration and increased L-type Ca2+ current (ICa,L) density; (3) delayed afterdepolarizations (DADs), arrhythmias and increased beat rate variability; (4) DADs, arrhythmias and cessation of spontaneous firing in response to β-adrenergic stimulation and rapid pacing. Additionally, compared to healthy control, LMNA-mutated iPSC-CMs displayed nuclear morphological irregularities and gene expression alterations. Notably, KB-R7943, a selective inhibitor of the reverse-mode of the Na+/Ca2+ exchanger, blocked the DADs in LMNA-mutated iPSC-CMs. Our findings demonstrate cellular electrophysiological mechanisms underlying the arrhythmias in LMNA-related dilated cardiomyopathy.
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