[Double strand DNA breaks in C57B1 and mdx mice cardiomyocytes after dynamical stress]

Tsitologiia
|September 7, 2007
PubMed

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.