4.7 Article

PPARdelta activation induces metabolic and contractile maturation of human pluripotent stem cell-derived cardiomyocytes

期刊

CELL STEM CELL
卷 29, 期 4, 页码 559-+

出版社

CELL PRESS
DOI: 10.1016/j.stem.2022.02.011

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资金

  1. NIH/NHLBI [R01HL134956, R56HL128646]
  2. Mindich Child Health and Development Institute
  3. Training Program in Stem Cell Biology fellowship from the New York State Department of Health [NYSTEM-C32561GG]

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By modulating metabolic pathways, we have successfully facilitated the maturation of human pluripotent stem-cell-derived cardiomyocytes. Activation of PPARd signaling enhances fatty acid oxidation and improves mitochondrial cristae formation and myofibril organization, ultimately enhancing the function of cardiomyocytes.
Pluripotent stem-cell-derived cardiomyocytes (PSC-CMs) provide an unprecedented opportunity to study human heart development and disease, but they are functionally and structurally immature. Here, we induce efficient human PSC-CM (hPSC-CM) maturation through metabolic-pathway modulations. Specifically, we find that peroxisome-proliferator-associated receptor (PPAR) signaling regulates glycolysis and fatty acid oxidation (FAO) in an isoform-specific manner. While PPARalpha (PPARa) is the most active isoform in hPSC-CMs, PPARdelta (PPARd) activation efficiently upregulates the gene regulatory networks underlying FAO, increases mitochondrial and peroxisome content, enhances mitochondrial cristae formation, and augments FAO flux. PPARd activation further increases binucleation, enhances myofibril organization, and improves contractility. Transient lactate exposure, which is frequently used for hPSC-CM purification, induces an independent cardiac maturation program but, when combined with PPARd activation, still enhances oxidative metabolism. In summary, we investigate multiple metabolic modifications in hPSC-CMs and identify a role for PPARd signaling in inducing the metabolic switch from glycolysis to FAO in hPSC-CMs.

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