Telomere Length, Mitochondrial DNA, and Micronucleus Yield in Response to Oxidative Stress in Peripheral Blood Mononuclear Cells

Int J Mol Sci. 2024 Jan 24;25(3):1428. doi: 10.3390/ijms25031428.

Abstract

Telomere shortening, chromosomal damage, and mitochondrial dysfunction are major initiators of cell aging and biomarkers of many diseases. However, the underlying correlations between nuclear and mitochondrial DNA alterations remain unclear. We investigated the relationship between telomere length (TL) and micronucleus (MN) and their association with mitochondrial DNA copy number (mtDNAcn) in peripheral blood mononuclear cells (PBMCs) in response to 100 μM and 200 μM of hydrogen peroxide (H2O2) at 44, 72, and 96 h. Significant TL shortening was observed after both doses of H2O2 and at all times (all p < 0.05). A concomitant increase in MN was found at 72 h (p < 0.01) and persisted at 96 h (p < 0.01). An increase in mtDNAcn (p = 0.04) at 200 µM of H2O2 was also found. In PBMCs treated with 200 µM H2O2, a significant inverse correlation was found between TL and MN (r = -0.76, p = 0.03), and mtDNA content was directly correlated with TL (r = 0.6, p = 0.04) and inversely related to MN (r = -0.78, p = 0.02). Telomere shortening is the main triggering mechanism of chromosomal damage in stimulated T lymphocytes under oxidative stress. The significant correlations between nuclear DNA damage and mtDNAcn support the notion of a telomere-mitochondria axis that might influence age-associated pathologies and be a target for the development of relevant anti-aging drugs.

Keywords: chromosomal damage; hydrogen peroxide; micronucleus; mitochondrial DNA copy number; oxidative stress; peripheral blood mononuclear cells; telomere length.

MeSH terms

  • DNA Copy Number Variations
  • DNA, Mitochondrial* / metabolism
  • Hydrogen Peroxide / toxicity
  • Leukocytes, Mononuclear* / metabolism
  • Mitochondria / genetics
  • Mitochondria / metabolism
  • Oxidative Stress
  • Telomere / genetics
  • Telomere / metabolism
  • Telomere Shortening

Substances

  • DNA, Mitochondrial
  • Hydrogen Peroxide

Grants and funding

We acknowledge co-funding from Next Generation EU, in the context of the National Recovery and Resilience Plan, Investment PE8—Project Age-It: “Ageing Well in an Ageing Society”. This paper was also supported by a Scientific Award “Metabolism: from cell energy to pathology” to Andrea Borghini granted by the Department of Biomedical Sciences, National Research Council (DSB-CNR).