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.

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.

Related Concept Videos

Mitogens and the Cell Cycle02:38

Mitogens and the Cell Cycle

Mitogens and their receptors play a crucial role in controlling the progression of the cell cycle. However, the loss of mitogenic control over cell division leads to tumor formation. Therefore, mitogens and mitogen receptors play an important role in cancer research. For instance, the epidermal growth factor (EGF) - a type of mitogen and its transmembrane receptor (EGFR), decides the fate of the cell's proliferation. When EGF binds to EGFR, a member of the ErbB family of tyrosine kinase...
Cells Coordinate Growth and Proliferation02:36

Cells Coordinate Growth and Proliferation

Cell size is a significant factor impacting cellular design, function, and fitness. There exists some internal coordination by which cells double their masses before division, thus, achieving homeostasis. Coordination between cell growth and proliferation depends on the checkpoints in between cell cycle phases. Loss of coordination or failure in the checkpoint mechanism can drive the cell to uncontrolled growth and loss of cellular function. Like dividing cells that coordinate cellular growth,...
Adaptive Mechanisms in Cancer Cells02:53

Adaptive Mechanisms in Cancer Cells

Cancer cells accumulate genetic changes at an abnormally rapid rate due to the defects in the DNA repair mechanisms. From an evolutionary perspective, such genetic instability is advantageous for cancer development. Mutant cell lines accumulate a series of beneficial mutations that contribute to their progression into cancer.
Some of the advantages that cancer cells have on normal cells include - enhanced ability to divide without terminally differentiating, induce new blood vessel formation,...
mTOR Signaling and Cancer Progression03:03

mTOR Signaling and Cancer Progression

The mammalian target of rapamycin or mTOR protein was discovered in 1994 due to its direct interaction with rapamycin. The protein gets its name from a yeast homolog called TOR. The mTOR protein complex in mammalian cells plays a major role in balancing anabolic processes such as the synthesis of proteins, lipids, and nucleotides and catabolic processes, such as autophagy in response to environmental cues, such as availability of nutrients and growth factors.
The mTOR pathway or the...
PI3K/mTOR/AKT Signaling Pathway01:22

PI3K/mTOR/AKT Signaling Pathway

The mammalian target of rapamycin  (mTOR) is a serine/threonine kinase that regulates growth, proliferation, and cell survival in response to hormones, growth factors, or nutrient availability. This kinase exists in two structurally and functionally distinct forms: mTOR complex 1  (mTORC1) and mTOR complex 2  (mTORC2). The first form (mTORC1) is composed of a rapamycin-sensitive Raptor and proline-rich Akt substrate, PRAS40. In contrast,  mTORC2 consists of a rapamycin-insensitive companion...
mTOR Signaling and Cancer Progression03:03

mTOR Signaling and Cancer Progression

The mammalian target of rapamycin or mTOR protein was discovered in 1994 due to its direct interaction with rapamycin. The protein gets its name from a yeast homolog called TOR. The mTOR protein complex in mammalian cells plays a major role in balancing anabolic processes such as the synthesis of proteins, lipids, and nucleotides and catabolic processes, such as autophagy in response to environmental cues, such as availability of nutrients and growth factors.
The mTOR pathway or the...