Sex and Alkyladenine DNA Glycosylase Expression are Key Susceptibility Factors for NDMA-induced Mutations, Toxicity,
Jennifer E Kay1,2, Joshua J Corrigan1, Lindsay B Volk1
1Department of Biological Engineering, Massachusetts Institute of Technology, Cambridge, MA, 02139.
Abstract:
N-Nitrosodimethylamine (NDMA) is present in food, water, and drugs and is considered a probable human carcinogen by the International Agency for Research on Cancer. The mechanism of action of NDMA involves the generation of carcinogenic methyl lesions such as 3-methyladenine (3MeA) on DNA bases. Alkyladenine DNA Glycosylase (AAG) removes 3MeA to initiate Base Excision Repair, leaving an intermediary lesion that is subsequently resolved by backbone cleavage, nucleotide insertion, and backbone ligation. The intermediate steps following lesion removal produce potentially toxic and mutagenic single-strand DNA breaks. Here, we explored differences between males and females regarding downstream DNA damage, toxicity, mutations and cancer arising from 3MeA in the livers of WT, Aag -/-, and Aag-overexpressing (AagTg) mice. We found that males were more susceptible to NDMA-induced mutations (WT and Aag -/-) and cancer (all genotypes). In contrast, AagTg females were more prone than males to micronucleus induction. As we showed in our prior analyses where data were pooled for males and females, Aag -/- mice were significantly more susceptible to NDMA-induced mutations and cancer, and AagTg mice displayed significantly greater toxicity. Building on these findings, our analyses of sex-related differences show that Aag deficiency and maleness are both susceptibility factors for NDMA-induced liver cancer, while Aag overexpression drives toxicity, potentially with a greater effect on females. By assessing differences between males and females, this study reveals a deeper mechanistic understanding of the underpinnings for a well-known increased risk of liver cancer in men versus women by demonstrating a higher susceptibility of male mice to both mutations and cancer.
Insights
Males are more susceptible to NDMA-induced liver cancer and mutations, while AAG deficiency and maleness are key risk factors. AAG overexpression increases toxicity, potentially affecting females more.
Area of Science:
- Toxicology
- Genetics
- Carcinogenesis
Background:
- N-Nitrosodimethylamine (NDMA) is a probable human carcinogen found in various sources.
- NDMA induces DNA damage via methyl lesions, primarily 3-methyladenine (3MeA).
- Alkyladenine DNA Glycosylase (AAG) initiates DNA repair of 3MeA, but intermediate steps can cause DNA breaks.
Purpose of the Study:
- To investigate sex-specific differences in DNA damage, toxicity, mutations, and cancer following NDMA exposure.
- To elucidate the role of Alkyladenine DNA Glycosylase (AAG) in sex-related susceptibility to NDMA-induced liver cancer.
Main Methods:
- Utilized wild-type (WT), Aag knockout (Aag-/-), and Aag-overexpressing (AagTg) mice.
- Assessed liver DNA damage, micronucleus induction, mutations, and tumor formation in male and female mice exposed to NDMA.
Main Results:
- Males exhibited higher susceptibility to NDMA-induced mutations and liver cancer across all genotypes.
- AagTg females showed increased micronucleus induction compared to males.
- Aag deficiency and male sex were identified as susceptibility factors for NDMA-induced liver cancer.
Conclusions:
- Male sex and AAG deficiency increase susceptibility to NDMA-induced liver cancer.
- AAG overexpression contributes to toxicity, with a potentially greater impact on females.
- This study provides mechanistic insights into the higher incidence of liver cancer in men compared to women.
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