A drug-induced accelerated senescence (DIAS) is a possibility to study aging in time lapse

Lirija Alili1, Johanna Diekmann, Melanie Giesen

  • 1Institute of Biochemistry & Molecular Biology I, Medical Faculty, Heinrich-Heine-University, Düsseldorf, Germany, lirija.alili@web.de.

Insights

Reactive oxygen species (ROS) trigger short-term skin cell aging, but not long-term. DNA damage combined with ROS, induced by mitomycin C, causes permanent, drug-induced accelerated senescence in human dermal fibroblasts.

Area of Science:

  • Cellular biology
  • Dermatology
  • Aging research

Background:

  • The oxidative stress theory is a leading explanation for aging at the molecular level.
  • Hydrogen peroxide induces a temporary senescence-like phenotype in human dermal fibroblasts.
  • Reactive oxygen species (ROS) act as short-term senescence triggers, not long-term maintainers.

Purpose of the Study:

  • To investigate the role of DNA-damaging agents in inducing long-term premature senescence.
  • To understand the molecular alterations during aging using mitomycin C (MMC).
  • To analyze MMC's potential to induce a permanent senescent cell type in human dermal fibroblasts (HDF).

Main Methods:

  • HDF were exposed to non-cytotoxic concentrations of mitomycin C (MMC).
  • Analysis of senescence markers including enlarged morphology, senescence-associated-ß-galactosidase activity, cell cycle arrest, ROS production, and MMP1-activity.
  • Comparison with markers of replicative senescence in HDF.

Main Results:

  • Mitomycin C (MMC) treatment induced drug-induced accelerated senescence (DIAS) in HDF.
  • Long-term expression of senescence markers was observed.
  • A combination of ROS and DNA alkylation is necessary for permanent senescence.

Conclusions:

  • Permanent cellular senescence requires multiple susceptibility factors, including ROS and DNA alkylation.
  • Drug-induced accelerated senescence (DIAS) can be achieved using agents like MMC.
  • This study provides insights into the molecular mechanisms of long-term cellular aging.

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