TY - JOUR
T1 - Conserved structural motifs governing the stoichiometric repair of alkylated DNA by O6-alkylguanine-DNA alkyltransferase
AU - Daniels, Douglas S.
AU - Tainer, John A.
N1 - Funding Information:
This work could not have been possible without the patient and expert collaboration of the laboratory of A.E. Pegg at the Pennsylvania State University College of Medicine in Hershey, PA. We thank C.D. Mol, M.E. Stroupe, and A.J. Das for critical reading of the manuscript, as well as the staffs and facilities of the Advanced Light Source and the Stanford Synchrotron Radiation Laboratory, which are supported by the Department of Energy. Work on DNA repair in the Tainer laboratory is supported by the National Institutes of Health grant GM46312 and a Graduate Research Fellowship from the National Science Foundation (D.S.D.).
PY - 2000/8/30
Y1 - 2000/8/30
N2 - O6-alkylguanine-DNA alkyltransferase (AGT) directly repairs alkylation damage at the O6-position of guanine in a unique, stoichiometric reaction. Crystal structures of AGT homologs from the three kingdoms of life reveal that despite their extremely low primary sequence homology, the topology and overall structure of AGT has been remarkably conserved. The C-terminal domain of the two-domain, α/β fold bears a helix-turn-helix (HTH) motif that has been implicated in DNA-binding by structural and mutagenic studies. In the second helix of the HTH, the recognition helix, lies a conserved RAV[A/G] motif, whose 'arginine finger' promotes flipping of the target nucleotide from the base stack. Recognition of the extrahelical guanine is likely predominantly through interactions with the protein backbone, while hydrophobic sidechains line the alkyl-binding pocket, as defined by product complexes of human AGT. The irreversible dealkylation reaction is accomplished by an active-site cysteine that participates in a hydrogen bond network with invariant histidine and glutamic acid residues, reminiscent of the serine protease catalytic triad. Structural and biochemical results suggest that cysteine alkylation opens the domain-interfacing 'Asn-hinge', which couples the active-site to the recognition helix, providing both a mechanism for release of repaired DNA and a signal for the observed degradation of alkylated AGT. (C) 2000 Elsevier Science B.V.
AB - O6-alkylguanine-DNA alkyltransferase (AGT) directly repairs alkylation damage at the O6-position of guanine in a unique, stoichiometric reaction. Crystal structures of AGT homologs from the three kingdoms of life reveal that despite their extremely low primary sequence homology, the topology and overall structure of AGT has been remarkably conserved. The C-terminal domain of the two-domain, α/β fold bears a helix-turn-helix (HTH) motif that has been implicated in DNA-binding by structural and mutagenic studies. In the second helix of the HTH, the recognition helix, lies a conserved RAV[A/G] motif, whose 'arginine finger' promotes flipping of the target nucleotide from the base stack. Recognition of the extrahelical guanine is likely predominantly through interactions with the protein backbone, while hydrophobic sidechains line the alkyl-binding pocket, as defined by product complexes of human AGT. The irreversible dealkylation reaction is accomplished by an active-site cysteine that participates in a hydrogen bond network with invariant histidine and glutamic acid residues, reminiscent of the serine protease catalytic triad. Structural and biochemical results suggest that cysteine alkylation opens the domain-interfacing 'Asn-hinge', which couples the active-site to the recognition helix, providing both a mechanism for release of repaired DNA and a signal for the observed degradation of alkylated AGT. (C) 2000 Elsevier Science B.V.
KW - DNA repair
KW - O-Alkylguanine alkyltransferase
KW - Protein crystallography
KW - Protein structure
KW - Review
UR - https://www.scopus.com/pages/publications/0034734387
UR - https://www.scopus.com/pages/publications/0034734387#tab=citedBy
U2 - 10.1016/S0921-8777(00)00024-0
DO - 10.1016/S0921-8777(00)00024-0
M3 - Article
C2 - 10946226
AN - SCOPUS:0034734387
SN - 0921-8777
VL - 460
SP - 151
EP - 163
JO - Mutation Research - DNA Repair
JF - Mutation Research - DNA Repair
IS - 3-4
ER -