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Imidazopurinones are markers of physiological genomic damage linked to DNA instability and glyoxalase 1-associated tumour multidrug resistance
Paul J. Thornalley, Sahar Waris, Thomas Fleming, Thomas Santarius, Sarah J. Larkin, Brigitte M. Winklhofer‐Roob, Michael R. Stratton, Naila Rabbani
Nucleic Acids Research · 2010 · ▲ 121 citations
Abstract
Glyoxal and methylglyoxal are reactive dicarbonyl metabolites formed and metabolized in physiological systems. Increased exposure to these dicarbonyls is linked to mutagenesis and cytotoxicity and enhanced dicarbonyl metabolism by overexpression of glyoxalase 1 is linked to tumour multidrug resistance in cancer chemotherapy. We report herein that glycation of DNA by glyoxal and methylglyoxal produces a quantitatively important class of nucleotide adduct in physiological systems-imidazopurinones. The adduct derived from methylglyoxal-3-(2'-deoxyribosyl)-6,7-dihydro-6,7-dihydroxy-6/7-methylimidazo-[2,3-b]purine-9(8)one isomers-was the major quantitative adduct detected in mononuclear leukocytes in vivo and tumour cell lines in vitro. It was linked to frequency of DNA strand breaks and increased markedly during apoptosis induced by a cell permeable glyoxalase 1 inhibitor. Unexpectedly, the DNA content of methylglyoxal-derived imidazopurinone and oxidative marker 7,8-dihydro-8-oxo-2'-deoxyguanosine were increased moderately in glyoxalase 1-linked multidrug resistant tumour cell lines. Together these findings suggest that imidazopurinones are a major type of endogenous DNA damage and glyoxalase 1 overexpression in tumour cells strives to counter increased imidazopurinone formation in tumour cells likely linked to their high glycolytic activity.
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- 10.1093/nar/gkq306
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- 2026-08-09 MST
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APA
Thornalley, P.J., Waris, S., Fleming, T., Santarius, T., Larkin, S.J., Winklhofer‐Roob, B.M., Stratton, M.R., & Rabbani, N. (2010). Imidazopurinones are markers of physiological genomic damage linked to DNA instability and glyoxalase 1-associated tumour multidrug resistance. <em>Nucleic Acids Research</em>. https://doi.org/10.1093/nar/gkq306
Vancouver
Thornalley PJ, Waris S, Fleming T, Santarius T, Larkin SJ, Winklhofer‐Roob BM, et al. Imidazopurinones are markers of physiological genomic damage linked to DNA instability and glyoxalase 1-associated tumour multidrug resistance. Nucleic Acids Research. 2010. doi:10.1093/nar/gkq306.
BibTeX
@article{paul2010Imidaz,
title = {Imidazopurinones are markers of physiological genomic damage linked to DNA instability and glyoxalase 1-associated tumour multidrug resistance},
author = {Paul J. Thornalley and Sahar Waris and Thomas Fleming and Thomas Santarius and Sarah J. Larkin and Brigitte M. Winklhofer‐Roob and Michael R. Stratton and Naila Rabbani},
journal = {Nucleic Acids Research},
year = {2010},
doi = {10.1093/nar/gkq306},
}
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