Related Experiment Video
Updated: May 14, 2026

A General Method for Detecting Nitrosamide Formation in the In Vitro Metabolism of Nitrosamines by Cytochrome P450s
Published on: September 25, 2017
S-nitrosoglutathione reductase deficiency increases mutagenesis from alkylation in mouse liver
James Leung1, Wei Wei, Limin Liu
1Department of Microbiology and Immunology, University of California, San Francisco, CA 94143, USA.
Abstract:
In human hepatocellular carcinoma (HCC) and many other cancers, somatic point mutations are highly prevalent, yet the mechanisms critical in their generation remain poorly understood. S-nitrosoglutathione reductase (GSNOR), a key regulator of protein S-nitrosylation, is frequently deficient in human HCC. Targeted deletion of the GSNOR gene in mice can reduce the activity of the DNA repair protein O (6)-alkylguanine-DNA alkyltransferase (AGT) and promote both carcinogen-induced and spontaneous HCC. In this study, we report that following exposure to the environmental carcinogen diethylnitrosamine, the mutation frequency of a transgenic reporter in the liver of GSNOR-deficient mice (GSNOR(-/-)) is significantly higher than that in wild-type control. In wild-type mice, diethylnitrosamine treatment does not significantly increase the frequency of the transition from G:C to A:T, a mutation deriving from diethylnitrosamine-induced O (6)-ethylguanines that are normally repaired by AGT. In contrast, the frequency of this transition from diethylnitrosamine is increased ~20 times in GSNOR(-/-) mice. GSNOR deficiency also significantly increases the frequency of the transversion from A:T to T:A, a mutation not affected by AGT. GSNOR deficiency in our experiments does not significantly affect either the frequencies of the other diethylnitrosamine-induced point mutations or hepatocyte proliferation. Thus, GSNOR deficiency, through both AGT-dependent and AGT-independent pathways, significantly raises the rates of specific types of DNA mutations. Our results demonstrate a critical role for GSNOR in maintaining genomic integrity in mice and support the hypothesis that GSNOR deficiency is an important cause of the widespread mutations in human HCC.
Insights
S-nitrosoglutathione reductase (GSNOR) deficiency significantly increases specific DNA mutations in mice, both through DNA repair pathways and independently. This finding supports GSNOR
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- Somatic point mutations are common in cancers like hepatocellular carcinoma (HCC).
- S-nitrosoglutathione reductase (GSNOR) is often deficient in HCC.
- GSNOR deficiency can impair DNA repair and promote cancer.
Purpose of the Study:
- To investigate the role of GSNOR in maintaining genomic integrity.
- To determine how GSNOR deficiency affects mutation frequency after carcinogen exposure.
Main Methods:
- Using GSNOR-deficient (GSNOR(-/-)) and wild-type mice.
- Exposure to the environmental carcinogen diethylnitrosamine.
- Analyzing mutation frequencies in liver tissue using a transgenic reporter.
Main Results:
- GSNOR(-/-) mice showed significantly higher mutation frequencies compared to wild-type mice.
- GSNOR deficiency increased specific G:C to A:T transitions (AGT-dependent) and A:T to T:A transversions (AGT-independent).
- GSNOR deficiency did not significantly affect other mutation types or hepatocyte proliferation.
Conclusions:
- GSNOR plays a critical role in maintaining genomic stability.
- GSNOR deficiency promotes specific DNA mutations via both AGT-dependent and AGT-independent mechanisms.
- GSNOR deficiency may be a significant factor in the development of mutations in human HCC.
More Related Videos
09:33Formation of Covalent DNA Adducts by Enzymatically Activated Carcinogens and Drugs In Vitro and Their Determination by 32P-postlabeling
Published on: March 20, 2018
12:15Quantification of three DNA Lesions by Mass Spectrometry and Assessment of Their Levels in Tissues of Mice Exposed to Ambient Fine Particulate Matter
Published on: May 29, 2019
Related Concept Videos
Pharmacogenetics of Phase II Enzymes: N-acetyltransferase, Thiopurine S-methyltransferase, UDP-glucuronosyltransferase
Phase II Reactions: Glutathione Conjugation and Mercapturic Acid Formation
Several distinctive characteristics distinguish glutathione conjugation from other phase II...
Mutagenicity and Carcinogenicity
Bioactivation and Tissue Toxicity
Spontaneous and Induced Mutations
Nucleotide Excision Repair