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Studying arrhythmogenic right ventricular dysplasia with patient-specific iPSCs

Cellular reprogramming of somatic cells to patient-specific induced pluripotent stem cells (iPSCs) enables in-vitro modelling of human genetic disorders for pathogenic investigations and therapeutic screens(1–7). However, using iPSC-derived cardiomyocytes (iPSC-CMs) to model an adult-onset heart dis...

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Autores principales: Kim, Changsung, Wong, Johnson, Wen, Jianyan, Wang, Shirong, Wang, Cheng, Spiering, Sean, Kan, Natalia G., Forcales, Sonia, Puri, Pier Lorenzo, Leone, Teresa C., Marine, Joseph E., Calkins, Hugh, Kelly, Daniel P., Judge, Daniel P., Chen, Huei-Sheng Vincent
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3753229/
https://www.ncbi.nlm.nih.gov/pubmed/23354045
http://dx.doi.org/10.1038/nature11799
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author Kim, Changsung
Wong, Johnson
Wen, Jianyan
Wang, Shirong
Wang, Cheng
Spiering, Sean
Kan, Natalia G.
Forcales, Sonia
Puri, Pier Lorenzo
Leone, Teresa C.
Marine, Joseph E.
Calkins, Hugh
Kelly, Daniel P.
Judge, Daniel P.
Chen, Huei-Sheng Vincent
author_facet Kim, Changsung
Wong, Johnson
Wen, Jianyan
Wang, Shirong
Wang, Cheng
Spiering, Sean
Kan, Natalia G.
Forcales, Sonia
Puri, Pier Lorenzo
Leone, Teresa C.
Marine, Joseph E.
Calkins, Hugh
Kelly, Daniel P.
Judge, Daniel P.
Chen, Huei-Sheng Vincent
author_sort Kim, Changsung
collection PubMed
description Cellular reprogramming of somatic cells to patient-specific induced pluripotent stem cells (iPSCs) enables in-vitro modelling of human genetic disorders for pathogenic investigations and therapeutic screens(1–7). However, using iPSC-derived cardiomyocytes (iPSC-CMs) to model an adult-onset heart disease remains challenging due to the uncertainty regarding the ability of relatively immature iPSC-CMs to fully recapitulate adult disease phenotypes. Arrhythmogenic right ventricular dysplasia/cardiomyopathy (ARVD/C) is an inherited heart disease characterized by pathological fatty infiltration and cardiomyocyte loss predominantly in the right ventricle (RV)(8), which is associated with life-threatening ventricular arrhythmias. Over 50% of affected individuals have desmosome gene mutations, most commonly in PKP2 encoding plakophilin-2(9). The median age at presentation of ARVD/C is 26 years(8). We used Yamanaka’s methods(1,10) to generate iPSC lines from fibroblasts of two patients with ARVD/C and PKP2 mutations(11,12). Mutant PKP2 iPSC-CMs demonstrate abnormal plakoglobin nuclear translocation and decreased β-catenin activity(13) in cardiogenic conditions; yet these abnormal features are insufficient to reproduce the pathological phenotypes of ARVD/C in standard cardiogenic conditions. Here we show that induction of adult-like metabolic energetics from an embryonic/glycolytic state and abnormal peroxisome proliferator-activated receptor-gamma (PPARγ) activation underlie the pathogenesis of ARVD/C. By coactivating normal PPAR-alpha (PPARα)-dependent metabolism and abnormal PPARγ pathway in beating embryoid bodies (EBs) with defined media, we established an efficient ARVD/C in-vitro model within two months. This model manifests exaggerated lipogenesis and apoptosis in mutant PKP2 iPSC-CMs. iPSC-CMs with a homozygous PKP2 mutation also displayed calcium-handling deficits. Our study is the first to demonstrate that induction of adult-like metabolism plays a critical role in establishing an adult-onset disease model using patient-specific iPSCs. Using this model, we revealed crucial pathogenic insights that metabolic derangement in adult-like metabolic milieu underlies ARVD/C pathologies, enabling us to propose novel disease-modifying therapeutic strategies.
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spelling pubmed-37532292013-08-27 Studying arrhythmogenic right ventricular dysplasia with patient-specific iPSCs Kim, Changsung Wong, Johnson Wen, Jianyan Wang, Shirong Wang, Cheng Spiering, Sean Kan, Natalia G. Forcales, Sonia Puri, Pier Lorenzo Leone, Teresa C. Marine, Joseph E. Calkins, Hugh Kelly, Daniel P. Judge, Daniel P. Chen, Huei-Sheng Vincent Nature Article Cellular reprogramming of somatic cells to patient-specific induced pluripotent stem cells (iPSCs) enables in-vitro modelling of human genetic disorders for pathogenic investigations and therapeutic screens(1–7). However, using iPSC-derived cardiomyocytes (iPSC-CMs) to model an adult-onset heart disease remains challenging due to the uncertainty regarding the ability of relatively immature iPSC-CMs to fully recapitulate adult disease phenotypes. Arrhythmogenic right ventricular dysplasia/cardiomyopathy (ARVD/C) is an inherited heart disease characterized by pathological fatty infiltration and cardiomyocyte loss predominantly in the right ventricle (RV)(8), which is associated with life-threatening ventricular arrhythmias. Over 50% of affected individuals have desmosome gene mutations, most commonly in PKP2 encoding plakophilin-2(9). The median age at presentation of ARVD/C is 26 years(8). We used Yamanaka’s methods(1,10) to generate iPSC lines from fibroblasts of two patients with ARVD/C and PKP2 mutations(11,12). Mutant PKP2 iPSC-CMs demonstrate abnormal plakoglobin nuclear translocation and decreased β-catenin activity(13) in cardiogenic conditions; yet these abnormal features are insufficient to reproduce the pathological phenotypes of ARVD/C in standard cardiogenic conditions. Here we show that induction of adult-like metabolic energetics from an embryonic/glycolytic state and abnormal peroxisome proliferator-activated receptor-gamma (PPARγ) activation underlie the pathogenesis of ARVD/C. By coactivating normal PPAR-alpha (PPARα)-dependent metabolism and abnormal PPARγ pathway in beating embryoid bodies (EBs) with defined media, we established an efficient ARVD/C in-vitro model within two months. This model manifests exaggerated lipogenesis and apoptosis in mutant PKP2 iPSC-CMs. iPSC-CMs with a homozygous PKP2 mutation also displayed calcium-handling deficits. Our study is the first to demonstrate that induction of adult-like metabolism plays a critical role in establishing an adult-onset disease model using patient-specific iPSCs. Using this model, we revealed crucial pathogenic insights that metabolic derangement in adult-like metabolic milieu underlies ARVD/C pathologies, enabling us to propose novel disease-modifying therapeutic strategies. 2013-01-27 2013-02-07 /pmc/articles/PMC3753229/ /pubmed/23354045 http://dx.doi.org/10.1038/nature11799 Text en Users may view, print, copy, download and text and data- mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Kim, Changsung
Wong, Johnson
Wen, Jianyan
Wang, Shirong
Wang, Cheng
Spiering, Sean
Kan, Natalia G.
Forcales, Sonia
Puri, Pier Lorenzo
Leone, Teresa C.
Marine, Joseph E.
Calkins, Hugh
Kelly, Daniel P.
Judge, Daniel P.
Chen, Huei-Sheng Vincent
Studying arrhythmogenic right ventricular dysplasia with patient-specific iPSCs
title Studying arrhythmogenic right ventricular dysplasia with patient-specific iPSCs
title_full Studying arrhythmogenic right ventricular dysplasia with patient-specific iPSCs
title_fullStr Studying arrhythmogenic right ventricular dysplasia with patient-specific iPSCs
title_full_unstemmed Studying arrhythmogenic right ventricular dysplasia with patient-specific iPSCs
title_short Studying arrhythmogenic right ventricular dysplasia with patient-specific iPSCs
title_sort studying arrhythmogenic right ventricular dysplasia with patient-specific ipscs
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3753229/
https://www.ncbi.nlm.nih.gov/pubmed/23354045
http://dx.doi.org/10.1038/nature11799
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