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Apical Resection Mouse Model to Study Early Mammalian Heart Regeneration
Published on: January 23, 2016
Hypoxia induces heart regeneration in adult mice
Yuji Nakada1, Diana C Canseco1, SuWannee Thet1
1Department of Internal Medicine, University of Texas Southwestern Medical Center, Dallas, Texas 75390, USA.
Insights
Hypoxia, or low oxygen, can stimulate adult heart regeneration in mice by reducing DNA damage and promoting cardiomyocyte proliferation. This finding offers potential therapeutic strategies for heart repair and regenerative medicine.
Area of Science:
- Cardiovascular Biology
- Regenerative Medicine
- Molecular Cardiology
Background:
- The adult mammalian heart has limited regenerative capacity after injury, leading to severe consequences like cardiomyopathy.
- Recent findings indicate the adult heart retains some self-renewal potential, primarily through cardiomyocyte proliferation.
- Cardiomyocyte renewal is linked to oxidative DNA damage regulated by aerobic respiration.
Purpose of the Study:
- To investigate if inhibiting aerobic respiration via systemic hypoxemia can induce cardiomyocyte proliferation in adult mammals.
- To explore the potential of hypoxemia as a therapeutic strategy for cardiac regeneration.
Main Methods:
- Gradual exposure of mice to severe systemic hypoxemia (7% oxygen for 2 weeks).
- Assessment of oxidative metabolism, reactive oxygen species production, and DNA damage.
- Analysis of cardiomyocyte mitosis and myocardial regeneration post-myocardial infarction.
- Genetic fate-mapping to trace the origin of new cardiomyocytes.
Main Results:
- Hypoxemia inhibited oxidative metabolism, reduced reactive oxygen species and DNA damage.
- Reactivation of cardiomyocyte mitosis was observed in adult mice.
- Hypoxemia treatment post-myocardial infarction promoted cardiac regeneration, reduced fibrosis, and improved heart function.
- Newly formed myocardium was confirmed to originate from existing cardiomyocytes.
Conclusions:
- Gradual systemic hypoxemia can reactivate the endogenous regenerative capacity of the adult mammalian heart.
- Hypoxia presents a promising therapeutic avenue in regenerative medicine for cardiac repair.
Abstract:
The adult mammalian heart is incapable of regeneration following cardiomyocyte loss, which underpins the lasting and severe effects of cardiomyopathy. Recently, it has become clear that the mammalian heart is not a post-mitotic organ. For example, the neonatal heart is capable of regenerating lost myocardium, and the adult heart is capable of modest self-renewal. In both of these scenarios, cardiomyocyte renewal occurs via the proliferation of pre-existing cardiomyocytes, and is regulated by aerobic-respiration-mediated oxidative DNA damage. Therefore, we reasoned that inhibiting aerobic respiration by inducing systemic hypoxaemia would alleviate oxidative DNA damage, thereby inducing cardiomyocyte proliferation in adult mammals. Here we report that, in mice, gradual exposure to severe systemic hypoxaemia, in which inspired oxygen is gradually decreased by 1% and maintained at 7% for 2 weeks, results in inhibition of oxidative metabolism, decreased reactive oxygen species production and oxidative DNA damage, and reactivation of cardiomyocyte mitosis. Notably, we find that exposure to hypoxaemia 1 week after induction of myocardial infarction induces a robust regenerative response with decreased myocardial fibrosis and improvement of left ventricular systolic function. Genetic fate-mapping analysis confirms that the newly formed myocardium is derived from pre-existing cardiomyocytes. These results demonstrate that the endogenous regenerative properties of the adult mammalian heart can be reactivated by exposure to gradual systemic hypoxaemia, and highlight the potential therapeutic role of hypoxia in regenerative medicine.
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