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Published on: May 23, 2016
Pkm2 Regulates Cardiomyocyte Cell Cycle and Promotes Cardiac Regeneration
Ajit Magadum1,2,3, Neha Singh1,2,3, Ann Anu Kurian1,2,3
1Cardiovascular Research Center (A.M, N.S., A.A.K., I.M., T.M. K.B., M.T.K.S., E.C., Y.S., J.G.O., P.L, A.G.-S., C.K., M.M., L.Z.), Icahn School of Medicine at Mount Sinai, New York.
Background:
The adult mammalian heart has limited regenerative capacity, mostly attributable to postnatal cardiomyocyte cell cycle arrest. In the last 2 decades, numerous studies have explored cardiomyocyte cell cycle regulatory mechanisms to enhance myocardial regeneration after myocardial infarction. Pkm2 (Pyruvate kinase muscle isoenzyme 2) is an isoenzyme of the glycolytic enzyme pyruvate kinase. The role of Pkm2 in cardiomyocyte proliferation, heart development, and cardiac regeneration is unknown.
Methods:
We investigated the effect of Pkm2 in cardiomyocytes through models of loss (cardiomyocyte-specific Pkm2 deletion during cardiac development) or gain using cardiomyocyte-specific Pkm2 modified mRNA to evaluate Pkm2 function and regenerative affects after acute or chronic myocardial infarction in mice.
Results:
Here, we identify Pkm2 as an important regulator of the cardiomyocyte cell cycle. We show that Pkm2 is expressed in cardiomyocytes during development and immediately after birth but not during adulthood. Loss of function studies show that cardiomyocyte-specific Pkm2 deletion during cardiac development resulted in significantly reduced cardiomyocyte cell cycle, cardiomyocyte numbers, and myocardial size. In addition, using cardiomyocyte-specific Pkm2 modified RNA, our novel cardiomyocyte-targeted strategy, after acute or chronic myocardial infarction, resulted in increased cardiomyocyte cell division, enhanced cardiac function, and improved long-term survival. We mechanistically show that Pkm2 regulates the cardiomyocyte cell cycle and reduces oxidative stress damage through anabolic pathways and β-catenin.
Conclusions:
We demonstrate that Pkm2 is an important intrinsic regulator of the cardiomyocyte cell cycle and oxidative stress, and highlight its therapeutic potential using cardiomyocyte-specific Pkm2 modified RNA as a gene delivery platform.
Insights
Pyruvate kinase muscle isoenzyme 2 (Pkm2) promotes cardiomyocyte cell cycle activity and cardiac regeneration. Restoring Pkm2 in adult hearts enhances recovery after myocardial infarction, offering therapeutic potential.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Regenerative Medicine
Background:
- The adult mammalian heart exhibits limited regenerative capacity due to cardiomyocyte cell cycle arrest.
- Research is ongoing to identify mechanisms that enhance myocardial regeneration post-myocardial infarction.
- The specific role of Pyruvate kinase muscle isoenzyme 2 (Pkm2) in cardiomyocyte proliferation and cardiac regeneration remains unexplored.
Purpose of the Study:
- To investigate the function of Pkm2 in cardiomyocyte cell cycle regulation and cardiac regeneration.
- To evaluate the impact of Pkm2 manipulation on heart development and recovery from myocardial infarction.
Main Methods:
- Utilized mouse models with cardiomyocyte-specific Pkm2 deletion during cardiac development (loss-of-function).
- Employed cardiomyocyte-specific Pkm2 modified mRNA for gain-of-function studies.
- Assessed Pkm2's effects on cardiomyocyte proliferation, cardiac function, and survival after induced myocardial infarction.
Main Results:
- Pkm2 is expressed in developing and neonatal cardiomyocytes but downregulated in adults.
- Pkm2 deletion impaired cardiomyocyte cell cycle, reduced cell numbers, and decreased myocardial size.
- Cardiomyocyte-specific Pkm2 restoration increased cell division, improved cardiac function, and enhanced survival post-myocardial infarction.
- Pkm2 regulates the cell cycle and mitigates oxidative stress via anabolic pathways and β-catenin.
Conclusions:
- Pkm2 is a critical intrinsic regulator of the cardiomyocyte cell cycle and oxidative stress.
- Cardiomyocyte-specific Pkm2 modified RNA represents a promising therapeutic strategy for cardiac regeneration.
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