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Isolation, Culture and Transduction of Adult Mouse Cardiomyocytes
Published on: August 28, 2016
Dynamics of cardiomyocyte and muscle stem cell proliferation in pig
Binxu Yin1, Hongyan Ren2, Hao Cai1
1Key Laboratory of Agricultural Animal Genetics, Breeding, and Reproduction of the Ministry of Education, College of Animal Sciences and Technology, Huazhong Agricultural University, Wuhan, 430070, China.
Insights
Porcine cardiomyocytes show limited proliferation after birth, unlike robust muscle stem cells. Oxidative DNA damage may impede heart repair in adult pigs, impacting cardiovascular research models.
Area of Science:
- Comparative cell biology
- Mammalian muscle regeneration
- Cardiovascular research
Background:
- Cardiac and skeletal muscle tissues share striated and contractile properties but differ intrinsically.
- Adult mammals exhibit poor heart repair due to limited cardiomyocyte proliferation and lack of cardiac stem cells.
- Skeletal muscle regeneration is efficient, supported by robust muscle stem cell proliferation.
Purpose of the Study:
- To investigate cell cycle dynamics of porcine cardiomyocytes and muscle stem cells across developmental stages.
- To compare proliferation patterns between cardiac and skeletal muscle in pigs, a large mammal model.
- To identify factors contributing to differences in regenerative potential between heart and skeletal muscle.
Main Methods:
- Analysis of cell cycle dynamics in porcine cardiomyocytes and muscle stem cells.
- Examination across embryonic, postnatal, and adult developmental stages.
- Assessment of oxidative DNA damage in cardiac and skeletal muscle tissues.
Main Results:
- Proliferative cardiomyocytes and muscle stem cells were observed in embryonic tissues.
- Muscle stem cell proliferation continued postnatally, while cardiomyocyte proliferation decreased significantly after birth.
- Increased cardiomyocyte cell cycle activity at postnatal day 20 was linked to binucleation, not division; elevated oxidative DNA damage was found in cardiac muscle.
Conclusions:
- Pigs exhibit distinct proliferation patterns in cardiomyocytes and muscle stem cells during development.
- Reduced cardiomyocyte proliferation in adult pigs may be linked to accumulated oxidative DNA damage.
- Understanding these species-specific proliferative features is crucial for utilizing porcine models in cardiovascular and muscular research.
Abstract:
The cardiac and skeletal muscle tissues are both striated and contractile but their intrinsic cellular properties are distinct. The minimal cardiomyocyte proliferation and the lack of cardiac stem cells directly leads to poor heart repair in adult mammals. But in skeletal muscle, the robust proliferation of widespread muscle stem cells support efficient muscle regeneration. The endogenous cardiomyocyte and muscle stem cell proliferation has been analyzed in common laboratory animals but not in large mammals including pigs, which are more comparable to human. In this study, we rigorously examined the cell cycle dynamics of porcine cardiomyocytes and muscle stem cells through different developmental stages. Proliferative cardiomyocytes and muscle stem cells were broadly observed in the embryonic heart and limb muscle respectively. Muscle stem cells continue to proliferate postnatally but cardiomyocyte proliferation was drastically reduced after birth. However, robust cardiomyocyte cell cycle activity was detected around postnatal day 20, which could be attributed to the binucleation but not cell division. Increased proliferating cells were detected in maternal heart during early pregnancy but they represent non-cardiomyocyte cell types. The islet1 expressing cells were only identified in the embryonic and new born porcine hearts. Furthermore, the accumulated oxidative DNA damage in the cardiac but not skeletal muscle during development could be responsible for the diminished cardiomyocyte proliferation in adult pig. Similarities and differences in the proliferation of heart and skeletal muscle cells are identified in pigs across different developmental stages. Such cellular proliferative features must be taken into account when using porcine models for cardiovascular and muscular research.
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