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Updated: Oct 2, 2026

Measuring DNA Damage and Repair in Mouse Splenocytes After Chronic In Vivo Exposure to Very Low Doses of Beta- and Gamma-Radiation
Published on: July 3, 2015
Attenuation of DNA polymerase beta-dependent base excision repair and increased DMS-induced mutagenicity in aged mice
Diane C Cabelof1, Julian J Raffoul, Sunitha Yanamadala
1Department of Nutrition and Food Science, Wayne State University, Detroit, MI 48202, USA.
Abstract:
The biological mechanisms responsible for aging remain poorly understood. We propose that increases in DNA damage and mutations that occur with age result from a reduced ability to repair DNA damage. To test this hypothesis, we have measured the ability to repair DNA damage in vitro by the base excision repair (BER) pathway in tissues of young (4-month-old) and old (24-month-old) C57BL/6 mice. We find in all tissues tested (brain, liver, spleen and testes), the ability to repair damage is significantly reduced (50-75%; P<0.01) with age, and that the reduction in repair capacity seen with age correlates with decreased levels of DNA polymerase beta (beta-pol) enzymatic activity, protein and mRNA. To determine the biological relevance of this age-related decline in BER, we measured spontaneous and chemically induced lacI mutation frequency in young and old animals. In line with previous findings, we observed a three-fold increase in spontaneous mutation frequency in aged animals. Interestingly, lacI mutation frequency in response to dimethyl sulfate (DMS) does not significantly increase in young animals whereas identical exposure in aged animals results in a five-fold increase in mutation frequency. Because DMS induces DNA damage processed by the BER pathway, it is suggested that the increased mutagenicity of DMS with age is related to the decline in BER capacity that occurs with age. The inability of the BER pathway to repair damages that accumulate with age may provide a mechanistic explanation for the well-established phenotype of DNA damage accumulation with age.
Insights
Aging is linked to reduced DNA repair capacity. Declines in base excision repair (BER) and DNA polymerase beta activity in older mice correlate with increased DNA damage and mutations, explaining age-related DNA accumulation.
Area of Science:
- Molecular Biology
- Genetics
- Gerontology
Background:
- The biological mechanisms driving aging are not fully understood.
- Accumulation of DNA damage and mutations is a hallmark of aging.
Purpose of the Study:
- To investigate the hypothesis that reduced DNA repair ability contributes to age-related DNA damage.
- To assess the role of the base excision repair (BER) pathway in aging.
Main Methods:
- Measured in vitro DNA repair capacity via the BER pathway in young and old C57BL/6 mice tissues.
- Quantified DNA polymerase beta (beta-pol) activity, protein, and mRNA levels.
- Assessed spontaneous and dimethyl sulfate (DMS)-induced lacI mutation frequencies.
Main Results:
- BER capacity was significantly reduced (50-75%) in all tested tissues of old mice compared to young mice.
- Reduced BER capacity correlated with decreased beta-pol activity, protein, and mRNA.
- Aged animals showed a three-fold increase in spontaneous mutations and a five-fold increase in DMS-induced mutations compared to young animals.
Conclusions:
- Age-related decline in BER capacity, linked to reduced beta-pol, contributes to DNA damage accumulation.
- Impaired DNA repair mechanisms may explain increased mutagenicity and DNA damage observed with aging.
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