4.8 Article

Structure of a DNA glycosylase that unhooks interstrand cross-links

出版社

NATL ACAD SCIENCES
DOI: 10.1073/pnas.1703066114

关键词

DNA repair; DNA glycosylase; interstrand cross-link; azinomycin B; winged-helix

资金

  1. National Science Foundation [MCB-1517695]
  2. National Institutes of Health [R01 ES019625, S10 RR026915]
  3. US Department of Energy [DE-AC02-06CH11357]
  4. Michigan Economic Development Corporation
  5. Michigan Technology Tri-Corridor Grant [085P1000817]
  6. Vanderbilt Training Program in Environmental Toxicology [T32 ES07028]

向作者/读者索取更多资源

DNA glycosylases are important editing enzymes that protect genomic stability by excising chemically modified nucleobases that alter normal DNA metabolism. These enzymes have been known only to initiate base excision repair of small adducts by extrusion from the DNA helix. However, recent reports have described both vertebrate and microbial DNA glycosylases capable of unhooking highly toxic interstrand cross-links (ICLs) and bulky minor groove adducts normally recognized by Fanconi anemia and nucleotide excision repair machinery, although the mechanisms of these activities are unknown. Here we report the crystal structure of Streptomyces sahachiroi AlkZ (previously Orf1), a bacterial DNA glycosylase that protects its host by excising ICLs derived from azinomycin B (AZB), a potent antimicrobial and antitumor genotoxin. AlkZ adopts a unique fold in which three tandem winged helix-turn-helix motifs scaffold a positively charged concave surface perfectly shaped for duplex DNA. Through mutational analysis, we identified two glutamine residues and a beta-hairpin within this putative DNA-binding cleft that are essential for catalytic activity. Additionally, we present a molecular docking model for how this active site can unhook either or both sides of an AZB ICL, providing a basis for understanding the mechanisms of base excision repair of ICLs. Given the prevalence of this protein fold in pathogenic bacteria, this work also lays the foundation for an emerging role of DNA repair in bacteria-host pathogenesis.

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