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Strandwise translocation of a DNA glycosylase on undamaged DNA.


ABSTRACT: Base excision repair of genotoxic nucleobase lesions in the genome is critically dependent upon the ability of DNA glycosylases to locate rare sites of damage embedded in a vast excess of undamaged DNA, using only thermal energy to fuel the search process. Considerable interest surrounds the question of how DNA glycosylases translocate efficiently along DNA while maintaining their vigilance for target damaged sites. Here, we report the observation of strandwise translocation of 8-oxoguanine DNA glycosylase, MutM, along undamaged DNA. In these complexes, the protein is observed to translocate by one nucleotide on one strand while remaining untranslocated on the complementary strand. We further report that alterations of single base-pairs or a single amino acid substitution (R112A) can induce strandwise translocation. Molecular dynamics simulations confirm that MutM can translocate along DNA in a strandwise fashion. These observations reveal a previously unobserved mode of movement for a DNA-binding protein along the surface of DNA.

SUBMITTER: Qi Y 

PROVIDER: S-EPMC3268267 | biostudies-literature | 2012 Jan

REPOSITORIES: biostudies-literature

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Strandwise translocation of a DNA glycosylase on undamaged DNA.

Qi Yan Y   Nam Kwangho K   Spong Marie C MC   Banerjee Anirban A   Banerjee Anirban A   Sung Rou-Jia RJ   Zhang Michael M   Karplus Martin M   Verdine Gregory L GL  

Proceedings of the National Academy of Sciences of the United States of America 20120104 4


Base excision repair of genotoxic nucleobase lesions in the genome is critically dependent upon the ability of DNA glycosylases to locate rare sites of damage embedded in a vast excess of undamaged DNA, using only thermal energy to fuel the search process. Considerable interest surrounds the question of how DNA glycosylases translocate efficiently along DNA while maintaining their vigilance for target damaged sites. Here, we report the observation of strandwise translocation of 8-oxoguanine DNA  ...[more]

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