Literature DB >> 34923199

A roadmap for the characterization of energy metabolism in human cardiomyocytes derived from induced pluripotent stem cells.

Giulia Emanuelli1, Anna Zoccarato2, Christina M Reumiller3, Angelos Papadopoulos3, Mei Chong3, Sabine Rebs4, Kai Betteridge3, Matteo Beretta3, Katrin Streckfuss-Bömeke5, Ajay M Shah6.   

Abstract

Human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CM) are an increasingly employed model in cardiac research and drug discovery. As cellular metabolism plays an integral role in determining phenotype, the characterization of the metabolic profile of hiPSC-CM during maturation is crucial for their translational application. In this study we employ a combination of methods including extracellular flux, 13C-glucose enrichment and targeted metabolomics to characterize the metabolic profile of hiPSC-CM during their maturation in culture from 6 weeks, up to 12 weeks. Results show a progressive remodeling of pathways involved in energy metabolism and substrate utilization along with an increase in sarcomere regularity. The oxidative capacity of hiPSC-CM and particularly their ability to utilize fatty acids increased with time. In parallel, relative glucose oxidation was reduced while glutamine oxidation was maintained at similar levels. There was also evidence of increased coupling of glycolysis to mitochondrial respiration, and away from glycolytic branch pathways at later stages of maturation. The rate of glycolysis as assessed by lactate production was maintained at both stages but with significant alterations in proximal glycolytic enzymes such as hexokinase and phosphofructokinase. We observed a progressive maturation of mitochondrial oxidative capacity at comparable levels of mitochondrial content between these time-points with enhancement of mitochondrial network structure. These results show that the metabolic profile of hiPSC-CM is progressively restructured, recapitulating aspects of early post-natal heart development. This would be particularly important to consider when employing these cell model in studies where metabolism plays an important role.
Copyright © 2021 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Cardiac cell models; Energy metabolism; Metabolic maturation; Metabolic shift; iPSC-derived cardiomyocytes

Mesh:

Substances:

Year:  2021        PMID: 34923199     DOI: 10.1016/j.yjmcc.2021.12.001

Source DB:  PubMed          Journal:  J Mol Cell Cardiol        ISSN: 0022-2828            Impact factor:   5.000


  4 in total

1.  Doxorubicin induces cardiotoxicity in a pluripotent stem cell model of aggressive B cell lymphoma cancer patients.

Authors:  Luis Peter Haupt; Sabine Rebs; Wiebke Maurer; Daniela Hübscher; Malte Tiburcy; Steffen Pabel; Andreas Maus; Steffen Köhne; Rewati Tappu; Jan Haas; Yun Li; Andre Sasse; Celio C X Santos; Ralf Dressel; Leszek Wojnowski; Gertrude Bunt; Wiebke Möbius; Ajay M Shah; Benjamin Meder; Bernd Wollnik; Samuel Sossalla; Gerd Hasenfuss; Katrin Streckfuss-Bömeke
Journal:  Basic Res Cardiol       Date:  2022-03-08       Impact factor: 12.416

Review 2.  New Insights Into Energy Substrate Utilization and Metabolic Remodeling in Cardiac Physiological Adaption.

Authors:  Xiaomeng Shi; Hongyu Qiu
Journal:  Front Physiol       Date:  2022-02-25       Impact factor: 4.755

Review 3.  Characterization of cardiac metabolism in iPSC-derived cardiomyocytes: lessons from maturation and disease modeling.

Authors:  Jolanda van der Velden; Birgit Goversen; Sofija Vučković; Rafeeh Dinani; Edgar E Nollet; Diederik W D Kuster; Jan Willem Buikema; Riekelt H Houtkooper; Miranda Nabben
Journal:  Stem Cell Res Ther       Date:  2022-07-23       Impact factor: 8.079

Review 4.  Genetically Encoded ATP Biosensors for Direct Monitoring of Cellular ATP Dynamics.

Authors:  Donnell White; Qinglin Yang
Journal:  Cells       Date:  2022-06-14       Impact factor: 7.666

  4 in total

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