EMBO Reports 2011-12-01

Analysis of substrate specificity of Schizosaccharomyces pombe Mag1 alkylpurine DNA glycosylase.

Suraj Adhikary, Brandt F Eichman

Index: EMBO Rep. 12(12) , 1286-92, (2011)

Full Text: HTML

Abstract

DNA glycosylases specialized for the repair of alkylation damage must identify, with fine specificity, a diverse array of subtle modifications within DNA. The current mechanism involves damage sensing through interrogation of the DNA duplex, followed by more specific recognition of the target base inside the active site pocket. To better understand the physical basis for alkylpurine detection, we determined the crystal structure of Schizosaccharomyces pombe Mag1 (spMag1) in complex with DNA and performed a mutational analysis of spMag1 and the close homologue from Saccharomyces cerevisiae (scMag). Despite strong homology, spMag1 and scMag differ in substrate specificity and cellular alkylation sensitivity, although the enzymological basis for their functional differences is unknown. We show that Mag preference for 1,N(6)-ethenoadenine (ɛA) is influenced by a minor groove-interrogating residue more than the composition of the nucleobase-binding pocket. Exchanging this residue between Mag proteins swapped their ɛA activities, providing evidence that residues outside the extrahelical base-binding pocket have a role in identification of a particular modification in addition to sensing damage.


Related Compounds

Related Articles:

Measurement of urinary excretion of 5-hydroxymethyluracil in human by GC/NICI/MS: correlation with cigarette smoking, urinary TBARS and etheno DNA adduct.

2005-03-15

[Toxicol. Lett. 155(3) , 403-10, (2005)]

Highly mutagenic exocyclic DNA adducts are substrates for the human nucleotide incision repair pathway.

2012-01-01

[PLoS ONE 7(12) , e51776, (2012)]

Magnesium, essential for base excision repair enzymes, inhibits substrate binding of N-methylpurine-DNA glycosylase.

2006-10-06

[J. Biol. Chem. 281(40) , 29525-32, (2006)]

Modeling the chemical step utilized by human alkyladenine DNA glycosylase: a concerted mechanism AIDS in selectively excising damaged purines.

2011-10-12

[J. Am. Chem. Soc. 133(40) , 16258-69, (2011)]

Structural insights by molecular dynamics simulations into differential repair efficiency for ethano-A versus etheno-A adducts by the human alkylpurine-DNA N-glycosylase.

2002-09-01

[Nucleic Acids Res. 30(17) , 3778-87, (2002)]

More Articles...