4.6 Article

Conserved Structural Chemistry for Incision Activity in Structurally Non-homologous Apurinic/Apyrimidinic Endonuclease APE1 and Endonuclease IV DNA Repair Enzymes

期刊

JOURNAL OF BIOLOGICAL CHEMISTRY
卷 288, 期 12, 页码 8445-8455

出版社

AMER SOC BIOCHEMISTRY MOLECULAR BIOLOGY INC
DOI: 10.1074/jbc.M112.422774

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资金

  1. National Institutes of Health (NIH), NCI [P01 CA92584]
  2. NIH, NIGMS [GM046312, CA053791]
  3. National Science Foundation Career Award [MCB-1149521]
  4. Howard Hughes Medical Institute
  5. Department of Energy [DE-AC02-05CH11231]
  6. Department of Energy (Office of Biological and Environmental Research)
  7. NIH (National Center for Research Resources), Biomedical Technology Program
  8. NIH (NIGMS)
  9. Japan Society for the Promotion of Science fellowship
  10. Skaggs Institute for Chemical Biology
  11. Div Of Molecular and Cellular Bioscience
  12. Direct For Biological Sciences [1149521] Funding Source: National Science Foundation

向作者/读者索取更多资源

Non-coding apurinic/apyrimidinic (AP) sites in DNA form spontaneously and as DNA base excision repair intermediates are the most common toxic and mutagenic in vivo DNA lesion. For repair, APsites must be processed by 5' AP endonucleases in initial stages of base repair. Human APE1 and bacterial Nfo represent the two conserved 5' AP endonuclease families in the biosphere; they both recognize AP sites and incise the phosphodiester backbone 5' to the lesion, yet they lack similar structures and metal ion requirements. Here, we determined and analyzed crystal structures of a 2.4 angstrom resolution APE1-DNA product complex with Mg2+ and a 0.92 angstrom Nfo with three metal ions. Structural and biochemical comparisons of these two evolutionarily distinct enzymes characterize keyAPE1catalytic residues that are potentially functionally similar to Nfo active site components, as further tested and supported by computational analyses. We observe a magnesium-water cluster in the APE1 active site, with only Glu-96 forming the direct protein coordination to the Mg2+. Despite differences in structure and metal requirements of APE1 and Nfo, comparison of their active site structures surprisingly reveals strong geometric conservation of the catalytic reaction, with APE1 catalytic side chains positioned analogously to Nfo metal positions, suggesting surprising functional equivalence between Nfo metal ions and APE1 residues. The finding that APE1 residues are positioned to substitute for Nfo metal ions is supported by the impact of mutations on activity. Collectively, the results illuminate the activities of residues, metal ions, and active site features for abasic site endonucleases.

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