A role for DNA mismatch repair in sensing and responding to fluoropyrimidine damage
- 20 October 2003
- journal article
- review article
- Published by Springer Nature in Oncogene
- Vol. 22 (47) , 7376-7388
- https://doi.org/10.1038/sj.onc.1206941
Abstract
The phenomenon of damage tolerance, whereby cells incur DNA lesions that are nonlethal, largely ignored, but highly mutagenic, appears to play a key role in carcinogenesis. Typically, these lesions are generated by alkylation of DNA or incorporation of base analogues. This tolerance is usually a result of the loss of specific DNA repair processes, most often DNA mismatch repair (MMR). The availability of genetically matched MMR-deficient and -corrected cell systems allows dissection of the consequences of this unrepaired damage in carcinogenesis as well as the elucidation of cell cycle checkpoint responses and cell death consequences. Recent data indicate that MMR plays an important role in detecting damage caused by fluorinated pyrimidines (FPs) and represents a repair system that is probably not the primary system for detecting damage caused by these agents, but may be an important system for correcting key mutagenic lesions that could initiate carcinogenesis. In fact, clinical studies have shown that there is no benefit of FP-based adjuvant chemotherapy in colon cancer patients exhibiting microsatellite instability, a hallmark of MMR deficiency. MMR-mediated damage tolerance and futile cycle repair processes are discussed, as well as possible strategies using FPs to exploit these systems for improved anticancer therapy.Keywords
This publication has 115 references indexed in Scilit:
- Hypermethylation of the hMLH1 gene promoter is associated with microsatellite instability in early human gastric neoplasiaOncogene, 2001
- Disruption of p53 in human cancer cells alters the responses to therapeutic agentsJournal of Clinical Investigation, 1999
- Inhibitors of thymine nucleotide biosynthesis: Antimetabolites that provoke genetic change via primary non-DNA targetsMutation Research - Fundamental and Molecular Mechanisms of Mutagenesis, 1996
- Ionized and wobble base-pairing for bromouracil-guanine in equilibrium under physiological conditionsJournal of Molecular Biology, 1989
- Anticarcinogenic potential of DNA-repair modulatorsMutation Research - Fundamental and Molecular Mechanisms of Mutagenesis, 1988
- Deoxyuridine triphosphatase: A potential site of interaction with pyrimidine nucleotide analoguesBiochemical and Biophysical Research Communications, 1982
- Mismatch correction at O6-methylguanine residues in E. coli DNANature, 1982
- Replacement of Thymidylic Acid by Deoxyuridylic Acid in the Deoxyribonucleic Acid of a Transducing Phage for Bacillus subtilisNature, 1963
- The specific mutagenic effect of base analogues on Phage T4Journal of Molecular Biology, 1959
- Fluorinated Pyrimidines, A New Class of Tumour-Inhibitory CompoundsNature, 1957