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DNA damage by carbonyl stress in human skin cells

Michael J Roberts1, Georg T Wondrak, Daniel Cervantes Laurean

  • 1Department of Pharmacology and Toxicology, College of Pharmacy, Arizona Cancer Center, University of Arizona, 1515 North Campbell Avenue, Tucson, AZ 85724, USA.

Mutation Research
|January 9, 2003
PubMed

Insights

Reactive carbonyl species (RCS) cause DNA damage in skin cells by promoting protein glycation and strand breaks. A carbonyl scavenger, D-penicillamine, effectively prevented this genotoxicity, suggesting a protective mechanism against skin aging and cancer.

Area of Science:

  • Biochemistry
  • Genotoxicology
  • Dermatology

Background:

  • Reactive carbonyl species (RCS) contribute to cellular carbonyl stress via lipid peroxidation and glycation.
  • Accumulative protein damage from glycation is linked to skin aging and diabetes, but its effect on genomic integrity is unclear.

Purpose of the Study:

  • To assess the genotoxic effects of acute carbonyl stress on skin cells (HaCaT keratinocytes and CF3 fibroblasts).
  • To investigate the mechanism of DNA damage induced by RCS and its prevention.

Main Methods:

  • Administration of alpha-dicarbonyl compounds (glyoxal, methylglyoxal) to skin cells.
  • Assessment of cell proliferation, intracellular protein glycation (CML in histones), and DNA strand cleavage (comet assay).
  • In vitro studies on DNA damage, histone cross-linking, and the role of oxygen and scavengers (D-penicillamine, mannitol).

Main Results:

  • Glyoxal and methylglyoxal inhibited cell proliferation and caused DNA strand cleavage and protein glycation.
  • RCS induced DNA damage, including strand breaks (glyoxal) and DNA-protein cross-linking (methylglyoxal).
  • D-penicillamine prevented RCS-induced genotoxicity, while mannitol partially suppressed oxygen-dependent DNA cleavage.

Conclusions:

  • Carbonyl stress induces DNA damage in skin cells through histone glycoxidation and subsequent reactive oxygen species-mediated DNA breaks.
  • RCS possess genotoxic potential in cultured skin cells.
  • Carbonyl scavengers may offer a preventive strategy against skin damage, carcinogenesis, and aging.

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