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Mutant ANP induces mitochondrial and ion channel remodeling in a human iPSC–derived atrial fibrillation model
Olivia T. Ly, Hanna Chen, Grace E. Brown, Liang Hong, Xinge Wang, Yong Duk Han, Mahmud Arif Pavel, Arvind Sridhar, Mark Maienschein-Cline, Brandon Chalazan, Sang-Ging Ong, Khaled Abdelhady, Malek Massad, Lona Ernst Rizkallah, Jalees Rehman, Salman R. Khetani, Dawood Darbar
Olivia T. Ly, Hanna Chen, Grace E. Brown, Liang Hong, Xinge Wang, Yong Duk Han, Mahmud Arif Pavel, Arvind Sridhar, Mark Maienschein-Cline, Brandon Chalazan, Sang-Ging Ong, Khaled Abdelhady, Malek Massad, Lona Ernst Rizkallah, Jalees Rehman, Salman R. Khetani, Dawood Darbar
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Research Article Cardiology Genetics

Mutant ANP induces mitochondrial and ion channel remodeling in a human iPSC–derived atrial fibrillation model

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Abstract

Human induced pluripotent stem cell–derived cardiomyocytes (iPSC-CMs) can model heritable arrhythmias to personalize therapies for individual patients. Although atrial fibrillation (AF) is a leading cause of cardiovascular morbidity and mortality, current platforms to generate iPSC-atrial (a) CMs are inadequate for modeling AF. We applied a combinatorial engineering approach, which integrated multiple physiological cues, including metabolic conditioning and electrical stimulation, to generate mature iPSC-aCMs. Using the patient’s own atrial tissue as a gold standard benchmark, we assessed the electrophysiological, structural, metabolic, and molecular maturation of iPSC-aCMs. Unbiased transcriptomic analysis and inference from gene regulatory networks identified key gene expression pathways and transcription factors mediating atrial development and maturation. Only mature iPSC-aCMs generated from patients with heritable AF carrying the non-ion channel gene (NPPA) mutation showed enhanced expression and function of a cardiac potassium channel and revealed mitochondrial electron transport chain dysfunction. Collectively, we propose that ion channel remodeling in conjunction with metabolic defects created an electrophysiological substrate for AF. Overall, our electro-metabolic approach generated mature human iPSC-aCMs that unmasked the underlying mechanism of the first non-ion channel gene, NPPA, that causes AF. Our maturation approach will allow for the investigation of the molecular underpinnings of heritable AF and the development of personalized therapies.

Authors

Olivia T. Ly, Hanna Chen, Grace E. Brown, Liang Hong, Xinge Wang, Yong Duk Han, Mahmud Arif Pavel, Arvind Sridhar, Mark Maienschein-Cline, Brandon Chalazan, Sang-Ging Ong, Khaled Abdelhady, Malek Massad, Lona Ernst Rizkallah, Jalees Rehman, Salman R. Khetani, Dawood Darbar

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Figure 3

EMM enhances the EP, molecular, and calcium kinetic parameters of iPSC-aCMs compared with human adult aCMs from the same patient.

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EMM enhances the EP, molecular, and calcium kinetic parameters of iPSC-a...
(A–C) EMM increased expression of key ion channels involved in generation of the atrial AP of HAT, baseline iPSC-aCMs, and EMM iPSC-aCMs, focused on sodium channels and gap junctions (A), calcium handling genes (B), and potassium channels (C); (n = 3 batches, n = 2 biological replicates per batch) (nonparametric Mann-Whitney U test). (D–F) EMM optimized EP maturation: representative atrial APs in haCMs (left), baseline iPSC-aCMs (middle), and EMM iPSC-aCMs (right) (D); quantification of resting membrane potential (RMP) (E); and quantification of AP amplitude (APA) (F) (2-way ANOVA with Bonferroni’s correction). EMM iPSC-aCMs displayed an RMP significantly more hyperpolarized than baseline iPSC-aCMs, and EMM iPSC-aCM RMP was no longer different from the RMP of haCMs. APA was also significantly increased in EMM iPSC-aCMs compared with baseline iPSC-aCMs, and the APA of EMM iPSC-aCMs was also no longer different from the APA of haCMs. (G–J) EMM resulted in improved calcium kinetics: representative calcium kinetic tracings obtained using Fluo-4 (G) and quantification of amplitude (H), rate of Ca2+ release (I), and Ca2+ decay (J) comparing baseline iPSC-aCMs and EMM iPSC-aCMs. Calcium kinetics show that EMM iPSC-aCMs demonstrate higher calcium intracellular concentration, faster calcium release from SR, and faster calcium resequestration compared with baseline iPSC-aCMs. Each trace and quantification was average normalized (F/F0) from multiple peaks from each cell and each batch; (n = 2 batches, n = 5 cells per batch) (nonparametric Mann-Whitney U test); *P < 0.05, **P < 0.01, ***P < 0.001, ****P < 0.0001.

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