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Evidence in Escherichia coli that N3-Methyladenine Lesions Induced by a Minor Groove Binding Methyl Sulfonate Ester Can Be Processed by both Base and Nucleotide Excision Repair

Authors :
Prasad Dande
Jack Kelly
Ana M. Soto
Barry Gold
Gretchen Ortiz
Gilberto Fronza
Huy Tran
Yi Zhang
Dharini Shah
Luis A. Marky
Juan Pablo López Martínez
Source :
Biochemistry. 40:8180-8180
Publication Year :
2001
Publisher :
American Chemical Society (ACS), 2001.

Abstract

It has been previously reported that a neutral DNA equilibrium binding agent based on an N-methylpyrrolecarboxamide dipeptide (lex) and modified with an O-methyl sulfonate ester functionality (MeOSO(2)-lex) selectively affords N3-methyladenine lesions. To study the interaction of the neutral lex dipeptide with calf thymus DNA, we have prepared stable, nonmethylating sulfone analogues of MeOSO(2)-lex that are neutral and cationic. Thermodynamic studies show that both the neutral and monocationic sulfone compounds bind to DNA with K(b)'s of 10(5) in primarily entropy-driven reactions. To determine how the cytotoxic N3-methyladenine adduct generated from MeOSO(2)-lex is repaired in E. coli, MeOSO(2)-lex was tested for toxicity in wild-type E. coli and in mutant strains defective in base excision repair (tag and/or alkA glycosylases or apn endonuclease), nucleotide excision repair (uvrA), and both base and nucleotide excision repair (tag/alkA/uvrA). The results clearly demonstrate the cellular toxicity of the N3-methyladenine lesion, and the protective role of base excision glycosylase proteins. A novel finding is that in the absence of functional base excision glycosylases, nucleotide excision repair can also protect cells from this cytotoxic minor groove lesion. Interaction between base and nucleotide excision repair systems is also seen in the protection of cells treated with cis-diamminedichloroplatinum(II) but not with anti-(+/-)-r-7,t-8-dihydroxy-t-9,10-epoxy-7,8,9,10-tetrahydrobenzo[a]pyrene.

Details

ISSN :
15204995 and 00062960
Volume :
40
Database :
OpenAIRE
Journal :
Biochemistry
Accession number :
edsair.doi.dedup.....f261f4c069d4c6376aca1a15c0d964fe
Full Text :
https://doi.org/10.1021/bi015139g