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Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
DNA damage and repair in type 2 diabetes mellitus
Janusz Blasiak1, Michal Arabski, Renata Krupa
1Department of Molecular Genetics, University of Lodz, Banacha 12/16, 90-237, Poland. januszb@biol.uni.lodz.pl
Abstract:
DNA damage may be associated with type 2 diabetes mellitus (T2DM) and its complications mainly through oxidative stress. Little is known about DNA repair disturbances potentially contributing to the overall extent of DNA damage in T2DM, which, in turn, may be linked with genomic instability resulting in cancer. To assess whether DNA repair may be perturbed in 2DM we determined: (1) the level of endogenous basal DNA damage, this means damage recognized in the alkaline comet assay (DNA strand breaks and alkali labile sites) as well as endogenous oxidative and alkylative DNA damage (2) the sensitivity to DNA-damaging agents hydrogen peroxide and doxorubicin and the efficacy of removing of DNA damage induced by these agents in peripheral blood lymphocytes of T2DM patients and healthy individuals. The level of DNA damage and the kinetics of DNA repair was evaluated by the alkaline single cell gel electrophoresis (comet assay). Oxidative and alkylative DNA damage were assayed with the use of DNA repair enzymes endonuclease III (Endo III) and formamidopyrimidine-DNA glycosylase (Fpg), recognizing oxidized DNA bases and 3-methyladenine-DNA glycosylase II (AlkA) recognizing alkylated bases. The levels of basal endogenous and oxidative DNA damage in diabetes patients were higher than in control subjects. There was no difference between the level of alkylative DNA in the patients and the controls. Diabetes patients displayed higher susceptibility to hydrogen peroxide and doxorubicin and decreased efficacy of repairing DNA damage induced by these agents than healthy controls. Our results suggest that type 2 diabetes mellitus may be associated not only with the elevated level of oxidative DNA damage but also with the increased susceptibility to mutagens and the decreased efficacy of DNA repair. These features may contribute to a link between diabetes and cancer and metrics of DNA damage and repair, measured by the comet assay, may be markers of risk of cancer in diabetes.
Insights
Type 2 diabetes mellitus (T2DM) is linked to increased DNA damage and impaired DNA repair mechanisms, particularly oxidative damage. These factors may elevate cancer risk in diabetic patients.
Area of Science:
- Biochemistry
- Genetics
- Oncology
Background:
- Type 2 diabetes mellitus (T2DM) is associated with oxidative stress, potentially leading to DNA damage.
- The role of DNA repair disturbances in T2DM and their link to cancer risk remains unclear.
Purpose of the Study:
- To investigate DNA damage and repair efficacy in T2DM patients.
- To assess the association between T2DM, DNA damage, and potential cancer risk.
Main Methods:
- Utilized the alkaline comet assay to evaluate basal DNA damage (strand breaks, alkali-labile sites).
- Assessed oxidative and alkylative DNA damage using specific DNA repair enzymes (Endo III, Fpg, AlkA).
- Determined lymphocyte sensitivity to hydrogen peroxide and doxorubicin and their DNA repair kinetics.
Main Results:
- T2DM patients exhibited higher levels of basal endogenous and oxidative DNA damage compared to controls.
- No significant difference in alkylative DNA damage was observed between groups.
- Diabetes patients showed increased susceptibility to DNA-damaging agents and reduced DNA repair efficacy.
Conclusions:
- T2DM is associated with elevated oxidative DNA damage and impaired DNA repair capacity.
- Increased susceptibility to mutagens and decreased DNA repair efficacy in T2DM may contribute to cancer risk.
- Comet assay metrics for DNA damage and repair could serve as cancer risk markers in diabetes.
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