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Mutational specificity of mice defective in the MTH1 and/or the MSH2 genes
Akinori Egashira1, Kazumi Yamauchi, Kaoru Yoshiyama
1Department of Medical Biophysics and Radiation Biology, Graduate School of Medical Sciences, Kyushu University, Fukuoka, Japan.
Abstract:
Oxidative damage of nucleotides within DNA or precursor pools caused by oxygen radicals is thought to play an important role in spontaneous mutagenesis, as well as carcinogenesis and aging. In particular, 8-oxodGTP and 2-OHdATP are potent mutagenic substrate for DNA synthesis. Mammalian MTH1 catalyzes hydrolysis of these mutagenic substrates, suggesting that it functions to prevent mutagenesis caused by these oxidized nucleotides. We have established MTH1(-/-) mice lacking the 8-oxodGTPase activity, which were shown to be susceptible to lung, liver and stomach cancers. To examine in vivo mutation events due to the MTH1-deficiency, a reporter gene, rpsL of Escherichia coli, was introduced into MTH1(-/-) mice. Interestingly, the net frequency of rpsL(-) forward mutants showed no apparent increase in MTH1(-/-) mice as compared to MTH1(+/+) mice. However, we found differences between these two genotypes in the class- and site-distributions of the rpsL(-) mutations recovered from the mice. Unlike MutT-deficient E. coli showing 1000-fold higher frequency of A:T-->C:G transversion than the wild type cells, an increase in frequency of A:T-->C:G transversion was not evident in MTH1 nullizygous mice. Nevertheless, the frequency of single-base frameshifts at mononucleotide runs was 5.7-fold higher in spleens of MTH1(-/-) mice than in those of wild type mice. Since the elevated incidence of single-base frameshifts at mononucleotide runs is a hallmark of the defect in MSH2-dependent mismatch repair system, this weak site-specific mutator effect of MTH1(-/-) mice could be attributed to a partial sequestration of the mismatch repair function that may act to correct mispairs with the oxidized nucleotides. Consistent with this hypothesis, a significant increase in the frequency of G:C-->T:A transversions was observed with MTH1(-/-) MSH2(-/-) mice over MSH2(-/-) mice alone. These results suggest a possible involvement of multiple anti-mutagenic pathways, including the MTH1 protein and other repair system(s), in mutagenesis caused by the oxidized nucleotides.
Insights
MTH1 deficiency in mice did not increase overall mutations but altered mutation types, suggesting involvement with DNA repair systems. This highlights multiple pathways protecting against oxidative DNA damage and mutagenesis.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Oxidative damage to DNA and its precursors by reactive oxygen species contributes to mutagenesis, cancer, and aging.
- Oxidized nucleotides like 8-oxodGTP and 2-OHdATP are mutagenic during DNA synthesis.
- Mammalian MTH1 enzyme hydrolyzes these mutagenic oxidized nucleotides, preventing DNA damage.
Purpose of the Study:
- To investigate in vivo mutation events in MTH1-deficient mice.
- To understand the role of MTH1 in preventing mutagenesis caused by oxidized nucleotides.
- To explore the interplay between MTH1 and other DNA repair pathways.
Main Methods:
- Generation of MTH1 knockout (MTH1(-/-)) mice.
- Introduction of an Escherichia coli rpsL reporter gene into MTH1(-/-) mice.
- Analysis of rpsL(-) forward mutant frequencies, classes, and sites in MTH1(-/-) and wild-type (MTH1(+/+)) mice.
- Cross-breeding MTH1(-/-) mice with MSH2(-/-) mice to study combined effects.
Main Results:
- MTH1(-/-) mice showed no overall increase in rpsL(-) forward mutants compared to MTH1(+/+) mice.
- A significant 5.7-fold increase in single-base frameshifts at mononucleotide runs was observed in MTH1(-/-) mouse spleens.
- MTH1(-/-) MSH2(-/-) mice exhibited a notable increase in G:C-->T:A transversions compared to MSH2(-/-) mice alone.
Conclusions:
- MTH1 deficiency leads to altered mutation profiles, specifically increased frameshifts, suggesting a partial sequestration of mismatch repair functions.
- The results indicate that MTH1 and other repair systems, like mismatch repair, act in parallel to prevent mutagenesis from oxidized nucleotides.
- Multiple anti-mutagenic pathways are crucial for maintaining genomic stability against oxidative stress.