TY - JOUR
T1 - Structure-function relationships governing activity and stability of a DNA alkylation damage repair thermostable protein
AU - Perugino, Giuseppe
AU - Miggiano, Riccardo
AU - Serpe, Mario
AU - Vettone, Antonella
AU - Valenti, Anna
AU - Lahiri, Samarpita
AU - Rossi, Franca
AU - Rossi, Mosè
AU - Rizzi, Menico
AU - Ciaramella, Maria
N1 - Publisher Copyright:
© The Author(s) 2015.
PY - 2015/10/15
Y1 - 2015/10/15
N2 - Alkylated DNA-protein alkyltransferases repair alkylated DNA bases, which are among the most common DNA lesions, and are evolutionary conserved, from prokaryotes to higher eukaryotes. The human ortholog, hAGT, is involved in resistance to alkylating chemotherapy drugs. We report here on the alkylated DNA-protein alkyltransferase, SsOGT, from an archaeal species living at high temperature, a condition that enhances the harmful effect of DNA alkylation. The exceptionally high stability of SsOGT gave us the unique opportunity to perform structural and biochemical analysis of a protein of this class in its post-reaction form. This analysis, along with those performed on SsOGT in its ligand-free and DNA-bound forms, provides insights in the structurefunction relationships of the protein before, during and after DNA repair, suggesting a molecular basis for DNA recognition, catalytic activity and protein post-reaction fate, and giving hints on the mechanism of alkylation-induced inactivation of this class of proteins.
AB - Alkylated DNA-protein alkyltransferases repair alkylated DNA bases, which are among the most common DNA lesions, and are evolutionary conserved, from prokaryotes to higher eukaryotes. The human ortholog, hAGT, is involved in resistance to alkylating chemotherapy drugs. We report here on the alkylated DNA-protein alkyltransferase, SsOGT, from an archaeal species living at high temperature, a condition that enhances the harmful effect of DNA alkylation. The exceptionally high stability of SsOGT gave us the unique opportunity to perform structural and biochemical analysis of a protein of this class in its post-reaction form. This analysis, along with those performed on SsOGT in its ligand-free and DNA-bound forms, provides insights in the structurefunction relationships of the protein before, during and after DNA repair, suggesting a molecular basis for DNA recognition, catalytic activity and protein post-reaction fate, and giving hints on the mechanism of alkylation-induced inactivation of this class of proteins.
UR - https://www.scopus.com/pages/publications/84952641684
U2 - 10.1093/nar/gkv774
DO - 10.1093/nar/gkv774
M3 - Article
SN - 0305-1048
VL - 43
SP - 8801
EP - 8816
JO - Nucleic Acids Research
JF - Nucleic Acids Research
IS - 18
ER -