Site-Directed Mutagenesis of the Cysteine Ligands to the [4Fe−4S] Cluster of Escherichia coli MutY
- 1 June 1999
- journal article
- research article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 38 (22) , 6997-7007
- https://doi.org/10.1021/bi982300n
Abstract
The Escherichia coli DNA repair enzyme MutY plays an important role in the recognition and repair of 7, 8-dihydro-8-oxo-2'-deoxyguanosine:2'-deoxyadenosine (OG:A) mismatches in DNA [Michaels et al. (1992) Proc. Natl. Acad. Sci. U.S. A. 89, 7022-7025]. MutY prevents DNA mutations resulting from the misincorporation of A opposite OG by using N-glycosylase activity to remove the adenine base. An interesting feature of MutY is that it contains a [4Fe-4S]2+ cluster that has been shown to play an important role in substrate recognition [Porello, S. L., Cannon, M. J., David, S. S. (1998) Biochemistry 37, 6465-6475]. Herein, we have used site-directed mutagenesis to individually replace the cysteine ligands to the [4Fe-4S]2+ cluster of E. coli MutY with serine, histidine, and alanine. The extent to which the various mutations reduce the levels of protein overexpression suggests that coordination of the [4Fe-4S]2+ cluster provides stability to MutY in vivo. The ability of the mutated enzymes to bind to a substrate analogue DNA duplex and their in vivo activity were evaluated. Remarkably, the effects are both substitution and position dependent. For example, replacement of cysteine 199 with histidine provides a mutated enzyme that is expressed at high levels and exhibits DNA binding and in vivo activity similar to the WT enzyme. These results suggest that histidine coordination to the iron-sulfur cluster may be accommodated at this position in MutY. In contrast, replacement of cysteine 192 with histidine results in less efficient DNA binding and in vivo activity compared to the WT enzyme without affecting levels of overexpression. The results from the site-directed mutagenesis suggest that the structural properties of the iron-sulfur cluster coordination domain are important for both substrate DNA recognition and the in vivo activity of MutY.Keywords
This publication has 18 references indexed in Scilit:
- Chemistry of Glycosylases and Endonucleases Involved in Base-Excision RepairChemical Reviews, 1998
- Solution NMR Study of the Electronic Structure and Magnetic Properties of Cluster Ligation Mutants of the Four-Iron Ferredoxin from the Hyperthermophilic Archaeon Pyrococcus furiosusJournal of the American Chemical Society, 1997
- DNA glycosylases in the base excision repair of DNABiochemical Journal, 1997
- Identification of the Structural and Functional Domains of MutY, an DNA Mismatch Repair EnzymePublished by Elsevier ,1996
- MISMATCH REPAIR IN REPLICATION FIDELITY, GENETIC RECOMBINATION, AND CANCER BIOLOGYAnnual Review of Biochemistry, 1996
- Specific Recognition of A/G and A/7,8-Dihydro-8-oxoguanine (8-oxoG) Mismatches by Escherichia coli MutY: Removal of the C-Terminal Domain Preferentially Affects A/8-oxoG RecognitionBiochemistry, 1996
- Iron−Sulfur Proteins with Nonredox FunctionsChemical Reviews, 1996
- The GO system protects organisms from the mutagenic effect of the spontaneous lesion 8-hydroxyguanine (7,8-dihydro-8-oxoguanine)Journal of Bacteriology, 1992
- Escherichia coli MutY protein has both N-glycosylase and apurinic/apyrimidinic endonuclease activities on A.C and A.G mispairs.Proceedings of the National Academy of Sciences, 1992
- Tertiary structure of Bacillus thermoproteolyticus [4Fe-4S] ferredoxinJournal of Molecular Biology, 1988