Related Experiment Video
Updated: May 16, 2025

Steady-state, Pre-steady-state, and Single-turnover Kinetic Measurement for DNA Glycosylase Activity
Published on: August 19, 2013
Methylglyoxal mutagenizes single-stranded DNA via Rev1-associated slippage and mispairing
Sriram Vijayraghavan1, Alessandra Ruggiero1, Samuel Becker1
1Department of Biochemistry and Molecular Biology, Medical University of South Carolina, Charleston, SC, USA.
Abstract:
Methylglyoxal (MG) is a highly reactive aldehyde that is produced endogenously during metabolism and is derived from exogenous sources such as sugary food items and cigarette smoke. Unless detoxified by glyoxalases (Glo1 and Glo2), MG can readily react with all major biomolecules, including DNA and proteins, generating characteristic lesions and glycation-derived by- products. As a result, MG exposure has been linked to a variety of human diseases, including cancers. Prior studies show that MG can glycate DNA, preferentially on guanine residues, and cause DNA damage. However, the mutagenicity of MG is poorly understood in vivo. In the context of cancer, it is essential to comprehend the true contribution of MG to genome instability and global mutational burden. In the present study, we show that MG can robustly mutagenize induced single-stranded DNA (ssDNA) in yeast, within a guanine centered mutable motif. We demonstrate that genome-wide MG mutagenesis in ssDNA is greatly elevated throughout the genome in the absence of Glo1, and abrogated in the presence of the aldehyde quencher aminoguanidine. We uncovered strand slippage and mispairing as the predominant mechanism for generation of all MG-associated mutations, and demonstrate that the translesion polymerase Rev1 is necessary in this pathway. Finally, we find that the primary MG-associated mutation is enriched in a variety of sequenced tumor datasets. We discuss the genomic impact of methylglyoxal exposure in the context of mutagenesis, DNA damage, and carcinogenesis.
Insights
Methylglyoxal (MG), a reactive aldehyde, causes DNA mutations in yeast by damaging single-stranded DNA. This mutagenic process, linked to cancer, is dependent on specific DNA repair pathways and is elevated when detoxification is impaired.
Area of Science:
- Biochemistry
- Molecular Biology
- Genetics
Background:
- Methylglyoxal (MG) is a reactive aldehyde from metabolism and external sources.
- MG reacts with biomolecules, forming lesions and contributing to diseases like cancer.
- MG's in vivo mutagenicity and role in genome instability are poorly understood.
Purpose of the Study:
- To investigate the mutagenicity of methylglyoxal (MG) on single-stranded DNA (ssDNA) in vivo.
- To elucidate the mechanisms underlying MG-induced mutagenesis.
- To assess the relevance of MG-associated mutations in human cancers.
Main Methods:
- Utilized yeast as a model system to study MG mutagenesis on induced ssDNA.
- Assessed MG mutagenesis in the presence and absence of the glyoxalase 1 (Glo1) enzyme and an aldehyde quencher (aminoguanidine).
- Investigated the role of translesion polymerase Rev1 in MG mutagenesis and analyzed tumor datasets for mutation enrichment.
Main Results:
- MG robustly mutagenizes ssDNA in yeast, particularly at guanine-rich motifs.
- MG mutagenesis is significantly elevated in Glo1-deficient yeast and reduced by aminoguanidine.
- Strand slippage and mispairing are key mechanisms, requiring Rev1, and specific MG-induced mutations are enriched in human tumors.
Conclusions:
- Methylglyoxal is a direct mutagen that causes genome instability through ssDNA damage.
- The glyoxalase system (Glo1) is crucial for detoxifying MG and preventing mutagenesis.
- MG-induced mutations are relevant to carcinogenesis and may contribute to the mutational burden in various cancers.
More Related Videos
Related Concept Videos
Mismatch Repair
The Mutator Protein Family Plays a Key Role in DNA Mismatch Repair
The human genome has more than 3 billion base pairs of DNA per cell. Prior to cell division, that vast amount of genetic...
Homologous Recombination
Translesion DNA Polymerases
TLS polymerases are found in all three domains of life - archaea, bacteria, and eukaryotes. Of the different classes of TLS polymerases, members of the Y family are fitted with specialized structures that...
Base Excision Repair
The first step of...
Overview of DNA Repair
Chemically...
Nucleotide Excision Repair

