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.
Abstract:
Currently, the oxidative stress (or free radical) theory of aging is the most popular explanation of how aging occurs at the molecular level. Accordingly, a stress-induced senescence-like phenotype of human dermal fibroblasts can be induced in vitro by the exposure of human diploid fibroblasts to subcytotoxic concentrations of hydrogen peroxide. However, several biomarkers of replicative senescence e.g. cell cycle arrest and enlarged morphology are abrogated 14 days after treatment, indicating that reactive oxygen species (ROS) rather acts as a trigger for short-term senescence (1-3 days) than being responsible for the maintenance of the senescence-like phenotype. Further, DNA-damaging factors are discussed resulting in a permanent senescent cell type. To induce long-term premature senescence and to understand the molecular alterations occurring during the aging process, we analyzed mitomycin C (MMC) as an alkylating DNA-damaging agent and ROS producer. Human dermal fibroblasts (HDF), used as model for skin aging, were exposed to non-cytotoxic concentrations of MMC and analyzed for potential markers of cellular aging, for example enlarged morphology, activity of senescence-associated-ß-galactosidase, cell cycle arrest, increased ROS production and MMP1-activity, which are well-documented for HDF in replicative senescence. Our data show that mitomycin C treatment results in a drug-induced accelerated senescence (DIAS) with long-term expression of senescence markers, demonstrating that a combination of different susceptibility factors, here ROS and DNA alkylation, are necessary to induce a permanent senescent cell type.
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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