Metabolic substrate shift in human induced pluripotent stem cells during cardiac differentiation: Functional

Naoko Nose1, Rudolf A Werner2, Yuichiro Ueda3

  • 1Comprehensive Heart Failure Center, University Hospital of Würzburg, Würzburg, Germany; Department of Nuclear Medicine, University Hospital of Würzburg, Würzburg, Germany; Stem Cell and Regenerative Medicine Group, Institute of Anatomy and Cell Biology, University of Würzburg, Würzburg, Germany; Department of Biomedical Imaging, National Cerebral and Cardiovascular Research Center, Suita, Japan; Division of Medical Technology and Science, Department of Medical Physics and Engineering, Course of Health Science, Osaka University Graduate School of Medicine, Suita, Japan.

Insights

Human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CM) exhibit a metabolic shift towards fatty acids, mirroring mature heart cells. This finding supports using hiPSC-CM for studying cardiac metabolism and disease.

Area of Science:

  • Stem cell biology
  • Cardiovascular research
  • Metabolic studies

Background:

  • Cellular reprogramming allows for large-scale production of human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CM).
  • The metabolic profile of hiPSC-CM compared to mature cardiomyocytes requires functional characterization.
  • Radionuclide tracer uptake assays were employed to assess hiPSC-CM metabolic status in vitro.

Purpose of the Study:

  • To functionally characterize the metabolic substrate utilization of hiPSC-CM in vitro.
  • To compare the metabolic profile of hiPSC-CM with endogenous cardiomyocytes.
  • To evaluate the potential of hiPSC-CM for studying cardiac metabolism.

Main Methods:

  • hiPSC cardiac differentiation induced via WNT and BMP signaling pathways.
  • Dual tracer uptake studies using 18F-FDG (glucose) and 125I-BMIPP (fatty acids).
  • Immunostaining for fatty acid transport and binding proteins.

Main Results:

  • In vitro assays demonstrated a metabolic substrate shift from glucose to fatty acids in hiPSC-CM.
  • This metabolic shift was comparable to that observed in native human cardiomyocytes.
  • hiPSC-CM expressed key fatty acid transport and binding proteins.

Conclusions:

  • In vitro cardiac maturation of hiPSC-CM results in a metabolic shift towards fatty acids, mimicking adult mammalian heart metabolism.
  • hiPSC-CM represent a viable model for investigating cardiac metabolism alterations in disease states.
  • Clinical nuclear medicine tracers can serve as functional assays in stem cell research for biomedical applications.
Abstract

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