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Selective base excision repair of DNA damage by the non-base-flipping DNA glycosylase AlkC.
- Source :
-
The EMBO journal [EMBO J] 2018 Jan 04; Vol. 37 (1), pp. 63-74. Date of Electronic Publication: 2017 Oct 20. - Publication Year :
- 2018
-
Abstract
- DNA glycosylases preserve genome integrity and define the specificity of the base excision repair pathway for discreet, detrimental modifications, and thus, the mechanisms by which glycosylases locate DNA damage are of particular interest. Bacterial AlkC and AlkD are specific for cationic alkylated nucleobases and have a distinctive HEAT-like repeat (HLR) fold. AlkD uses a unique non-base-flipping mechanism that enables excision of bulky lesions more commonly associated with nucleotide excision repair. In contrast, AlkC has a much narrower specificity for small lesions, principally N3-methyladenine (3mA). Here, we describe how AlkC selects for and excises 3mA using a non-base-flipping strategy distinct from that of AlkD. A crystal structure resembling a catalytic intermediate complex shows how AlkC uses unique HLR and immunoglobulin-like domains to induce a sharp kink in the DNA, exposing the damaged nucleobase to active site residues that project into the DNA This active site can accommodate and excise N3-methylcytosine (3mC) and N1-methyladenine (1mA), which are also repaired by AlkB-catalyzed oxidative demethylation, providing a potential alternative mechanism for repair of these lesions in bacteria.<br /> (© 2017 The Authors.)
- Subjects :
- Adenine analogs & derivatives
Adenine chemistry
Alkylation
Amino Acid Sequence
Catalytic Domain
Crystallography, X-Ray
Models, Molecular
Protein Conformation
Sequence Homology
Bacillus cereus enzymology
DNA Adducts chemistry
DNA Adducts metabolism
DNA Damage
DNA Glycosylases chemistry
DNA Glycosylases metabolism
DNA Repair
Subjects
Details
- Language :
- English
- ISSN :
- 1460-2075
- Volume :
- 37
- Issue :
- 1
- Database :
- MEDLINE
- Journal :
- The EMBO journal
- Publication Type :
- Academic Journal
- Accession number :
- 29054852
- Full Text :
- https://doi.org/10.15252/embj.201797833