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Updated: Feb 5, 2026

In Vitro Differentiation of Human Pluripotent Stem Cells into Trophoblastic Cells
Published on: March 16, 2017
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.
Background:
Recent developments in cellular reprogramming technology enable the production of virtually unlimited numbers of human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CM). Although hiPSC-CM share various characteristic hallmarks with endogenous cardiomyocytes, it remains a question as to what extent metabolic characteristics are equivalent to mature mammalian cardiomyocytes. Here we set out to functionally characterize the metabolic status of hiPSC-CM in vitro by employing a radionuclide tracer uptake assay.
Material And Methods:
Cardiac differentiation of hiPSC was induced using a combination of well-orchestrated extrinsic stimuli such as WNT activation (by CHIR99021) and BMP signalling followed by WNT inhibition and lactate based cardiomyocyte enrichment. For characterization of metabolic substrates, dual tracer uptake studies were performed with 18F‑2‑fluoro‑2‑deoxy‑d‑glucose (18F-FDG) and 125I‑β‑methyl‑iodophenyl‑pentadecanoic acid (125I-BMIPP) as transport markers of glucose and fatty acids, respectively.
Results:
After cardiac differentiation of hiPSCs, in vitro tracer uptake assays confirmed metabolic substrate shift from glucose to fatty acids that was comparable to those observed in native isolated human cardiomyocytes. Immunostaining further confirmed expression of fatty acid transport and binding proteins on hiPSC-CM.
Conclusions:
During in vitro cardiac maturation, we observed a metabolic shift to fatty acids, which are known as a main energy source of mammalian hearts, suggesting hi-PSC-CM as a potential functional phenotype to investigate alteration of cardiac metabolism in cardiac diseases. Results also highlight the use of available clinical nuclear medicine tracers as functional assays in stem cell research for improved generation of autologous differentiated cells for numerous biomedical applications.
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