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Published on: May 16, 2020
[Double strand DNA breaks in C57B1 and mdx mice cardiomyocytes after dynamical stress]
Abstract:
The survival of cardiac myocytes under different physiological and pathological conditions presents pressing problem. mdx mice cardiac myocytes are a promising model of cell survival under condition of oxidative stress. Our early results have shown that some part of mdx mice cardiomyocytes is in early stage of apoptosis (Kazakov, Mikhailov, 2001). But the development of cell death with loss of apoptotical cardiac myocytes occurs only after dynamical stress (bathing during 5 min) (Mikhailov et al., 2001). DNA endonuclease activity in the myocardium and low level of cardiac myocytes death during usual being of mdx mice allowed us to suggest DNA repair to be involved in the survival of mdx mice cardiac myocytes (Mikhailov et al., 2003). To confirm the suggestion we have studied the dynamics of formation and elimination of double strand DNA breaks in mdx myocardium cells after 5 min bathing at 12 degrees C. To visualise double strand DNA breaks formation cell nuclei were stained by monoclonal antibodies to phosphorylated H2Ax histone and to mouse PAP. Double staining with monoclonal anti-H2Ax antibodies and monoclonal anti-a-actin antibodies were used to separate cardiac myocytes from other myocardial cell types. The results showed that during 40 min after stress the deal of H2Ax-positive nuclei in mdx myocardium cells grew up to 41.7 +/- 11.4 % as compared with the initial control level of 6.7 +/- 0.2 %. The number of H2Ax-positive nuclei in these cells decreased after 24 h to 5.7 +/- 0.2 %. The quantity of tagged myocardium cell nuclei in C57B1/6 mice after stress was negligible and did not go beyond 0.01%. Dynamical stress also induced the increase in the rate of 3H-Thymidine incorporation by mdx mice cardiac myocytes from 0.3 +/- 0.3 up to 2.9 +/- 0.5 %. There was not change in the rate of 3H-Thymidine incorporation by cardiac myocytes in C57B1/6 mice. The numbers of labelled nuclei before and after stress were 0.2 and 0.3 %, correspondingly. The number of 3H-Thymidine labelled mdx cardiac myocytes fell down up to 0.4 +/- 0.2 % within 24 h after stress; the level of labelled C57B1/6 cardiac myocytes did not change. We have concluded that 3H-Thymidine incorporation into cardiac myocytes nuclei and staining of these nuclei by monoclonal antiboies phosphorylated H2Ax histone after stress demonstrate rather DNA repair than cardiomyocytes entry into the cell cycle.
Insights
MDX mice cardiac myocytes show DNA repair mechanisms following stress, indicated by increased double-strand DNA breaks and thymidine incorporation. These findings suggest DNA repair, not cell cycle entry, is key to cardiac myocyte survival under stress.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Cellular Stress Response
Background:
- Cardiac myocyte survival is critical under physiological and pathological stress.
- MDX mice serve as a model for studying oxidative stress in cardiomyocytes.
- Previous studies indicated early apoptosis in MDX mice cardiomyocytes, with cell death occurring after significant stress.
Purpose of the Study:
- To investigate the involvement of DNA repair in the survival of MDX mice cardiac myocytes.
- To analyze the dynamics of double-strand DNA break formation and repair after induced stress.
- To differentiate between DNA repair and cell cycle entry as responses to stress.
Main Methods:
- MDX mice and C57B1/6 mice were subjected to a 5-minute cold water stress.
- Monoclonal antibodies against phosphorylated H2Ax histone and mouse PAP were used to visualize DNA breaks.
- Double staining with anti-H2Ax and anti-a-actin antibodies identified cardiac myocytes.
- 3H-Thymidine incorporation was measured to assess DNA synthesis.
Main Results:
- A significant increase in H2Ax-positive nuclei (indicating double-strand DNA breaks) was observed in MDX mice cardiac myocytes post-stress (41.7% vs. 6.7% control), returning to baseline within 24 hours.
- 3H-Thymidine incorporation increased in MDX mice cardiac myocytes after stress (2.9% vs. 0.3% control), with labeled cells decreasing within 24 hours.
- Minimal DNA damage and thymidine incorporation were observed in control C57B1/6 mice.
Conclusions:
- Stress-induced H2Ax phosphorylation and 3H-Thymidine incorporation in MDX mice cardiac myocytes indicate active DNA repair processes.
- These findings support the hypothesis that DNA repair mechanisms contribute to cardiac myocyte survival in MDX mice under stress.
- The observed responses suggest DNA repair, rather than cell cycle re-entry, is the primary mechanism for cardiac myocyte adaptation to stress in this model.
