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A new protein architecture for processing alkylation damaged DNA: the crystal structure of DNA glycosylase AlkD.


ABSTRACT: DNA glycosylases safeguard the genome by locating and excising chemically modified bases from DNA. AlkD is a recently discovered bacterial DNA glycosylase that removes positively charged methylpurines from DNA, and was predicted to adopt a protein fold distinct from from those of other DNA repair proteins. The crystal structure of Bacillus cereus AlkD presented here shows that the protein is composed exclusively of helical HEAT-like repeats, which form a solenoid perfectly shaped to accommodate a DNA duplex on the concave surface. Structural analysis of the variant HEAT repeats in AlkD provides a rationale for how this protein scaffolding motif has been modified to bind DNA. We report 7mG excision and DNA binding activities of AlkD mutants, along with a comparison of alkylpurine DNA glycosylase structures. Together, these data provide important insight into the requirements for alkylation repair within DNA and suggest that AlkD utilizes a novel strategy to manipulate DNA in its search for alkylpurine bases.

SUBMITTER: Rubinson EH 

PROVIDER: S-EPMC3763988 | biostudies-literature | 2008 Aug

REPOSITORIES: biostudies-literature

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A new protein architecture for processing alkylation damaged DNA: the crystal structure of DNA glycosylase AlkD.

Rubinson Emily H EH   Metz Audrey H AH   O'Quin Jami J   Eichman Brandt F BF  

Journal of molecular biology 20080605 1


DNA glycosylases safeguard the genome by locating and excising chemically modified bases from DNA. AlkD is a recently discovered bacterial DNA glycosylase that removes positively charged methylpurines from DNA, and was predicted to adopt a protein fold distinct from from those of other DNA repair proteins. The crystal structure of Bacillus cereus AlkD presented here shows that the protein is composed exclusively of helical HEAT-like repeats, which form a solenoid perfectly shaped to accommodate  ...[more]

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