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Isolation, Culture and Transduction of Adult Mouse Cardiomyocytes
Published on: August 28, 2016
mTORC1 Regulates the Metabolic Switch of Postnatal Cardiomyocytes During Regeneration
Wyatt G Paltzer1, Timothy J Aballo1, Jiyoung Bae2
1Department of Cell and Regenerative Biology, School of Medicine and Public Health, University of Wisconsin-Madison, Madison, WI 53705, United States.
Abstract:
The metabolic switch from glycolysis to fatty acid oxidation in postnatal cardiomyocytes contributes to the loss of the cardiac regenerative potential of the mammalian heart. However, the mechanisms that regulate this metabolic switch remain unclear. The protein kinase complex mechanistic target of rapamycin complex 1 (mTORC1) is a central signaling hub that regulates cellular metabolism and protein synthesis, yet its role during mammalian heart regeneration and postnatal metabolic maturation is undefined. Here, we use immunoblotting, rapamycin treatment, myocardial infarction, and global proteomics to define the role of mTORC1 in postnatal heart development and regeneration. Our results demonstrate that the activity of mTORC1 is dynamically regulated between the regenerating and the non-regenerating hearts. Acute inhibition of mTORC1 by rapamycin or everolimus reduces cardiomyocyte proliferation and inhibits neonatal heart regeneration following injury. Our quantitative proteomic analysis demonstrates that transient inhibition of mTORC1 during neonatal heart injury did not reduce protein synthesis, but rather shifts the cardiac proteome of the neonatal injured heart from glycolysis towards fatty acid oxidation. This indicates that mTORC1 inhibition following injury accelerates the postnatal metabolic switch, which promotes metabolic maturation and impedes cardiomyocyte proliferation and heart regeneration. Taken together, our results define an important role for mTORC1 in regulating postnatal cardiac metabolism and may represent a novel target to modulate cardiac metabolism and promote heart regeneration.
Insights
Inhibition of mechanistic target of rapamycin complex 1 (mTORC1) in neonatal hearts accelerates metabolic maturation, hindering cardiomyocyte proliferation and impairing heart regeneration after injury.
Area of Science:
- Cardiovascular Biology
- Cardiac Metabolism
- Developmental Biology
Background:
- Postnatal mammalian heart regeneration is limited, linked to a metabolic shift from glycolysis to fatty acid oxidation.
- The role of mechanistic target of rapamycin complex 1 (mTORC1), a key regulator of metabolism and protein synthesis, in postnatal cardiac development and regeneration is largely unknown.
Approach:
- Utilized immunoblotting, rapamycin treatment, myocardial infarction models, and global proteomics.
- Investigated the dynamic regulation of mTORC1 activity in regenerating versus non-regenerating neonatal hearts.
- Assessed the impact of acute mTORC1 inhibition on cardiomyocyte proliferation and cardiac proteome post-injury.
Key Points:
- Acute mTORC1 inhibition via rapamycin or everolimus reduced cardiomyocyte proliferation and inhibited neonatal heart regeneration.
- Quantitative proteomics revealed that transient mTORC1 inhibition shifted the neonatal injured heart proteome from glycolysis towards fatty acid oxidation without reducing protein synthesis.
- mTORC1 inhibition post-injury accelerates the natural postnatal metabolic switch, promoting metabolic maturation and impeding regeneration.
Conclusions:
- mTORC1 plays a critical role in regulating postnatal cardiac metabolism and cardiomyocyte proliferation.
- Targeting mTORC1 activity presents a potential strategy to modulate cardiac metabolism and enhance heart regeneration.
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