Keyword search (3,448 papers available)


O4-alkyl-2'-deoxythymidine cross-linked DNA to probe recognition and repair by O6-alkylguanine DNA alkyltransferases.

Author(s): McManus FP, O'Flaherty DK, Noronha AM, Wilds CJ

Org Biomol Chem. 2012 Sep 21;10(35):7078-90 Authors: McManus FP, O'Flaherty DK, Noronha AM, Wilds CJ

Article GUID: 22850722

Site-specific covalent capture of human O6-alkylguanine-DNA-alkyltransferase using single-stranded intrastrand cross-linked DNA.

Author(s): O'Flaherty DK, Wilds CJ

Org Biomol Chem. 2016 Dec 20;15(1):189-196 Authors: O'Flaherty DK, Wilds CJ

Article GUID: 27886318

Structural basis of interstrand cross-link repair by O6-alkylguanine DNA alkyltransferase.

Author(s): Denisov AY, McManus FP, O'Flaherty DK, Noronha AM, Wilds CJ

Org Biomol Chem. 2017 Oct 11;15(39):8361-8370 Authors: Denisov AY, McManus FP, O'Flaherty DK, Noronha AM, Wilds CJ

Article GUID: 28937154

Covalent capture of OGT's active site using engineered human-E. coli chimera and intrastrand DNA cross-links.

Author(s): Copp W, O'Flaherty DK, Wilds CJ

Org Biomol Chem. 2018 11 28;16(46):9053-9058 Authors: Copp W, O'Flaherty DK, Wilds CJ

Article GUID: 30430154


Title:Covalent capture of OGT's active site using engineered human-E. coli chimera and intrastrand DNA cross-links.
Authors:Copp WO'Flaherty DKWilds CJ
Link:https://www.ncbi.nlm.nih.gov/pubmed/30430154?dopt=Abstract
Category:Org Biomol Chem
PMID:30430154
Dept Affiliation: CHEMBIOCHEM
1 Department of Chemistry and Biochemistry, Concordia University, Montréal, Québec H4B1R6, Canada. chris.wilds@concordia.ca.

Description:

Covalent capture of OGT's active site using engineered human-E. coli chimera and intrastrand DNA cross-links.

Org Biomol Chem. 2018 11 28;16(46):9053-9058

Authors: Copp W, O'Flaherty DK, Wilds CJ

Abstract

O 6-Alkylguanine DNA alkyltransferases (AGTs) are proteins found in most organisms whose role is to remove alkylation damage from the O6- and O4-positions of 2'-deoxyguanosine (dG) and thymidine (dT), respectively. Variations in active site residues between AGTs from different organisms leads to differences in repair proficiency: The human variant (hAGT) has a proclivity for removal of alkyl groups at the O6-position of guanine and the E. coli OGT protein has activity towards the O4-position of thymine. A chimeric protein (hOGT) that our laboratory has engineered with twenty of the active site residues mutated in hAGT to those found in OGT, exhibited activity towards a broader range of substrates relative to native OGT. Among the substrates that the hOGT protein was found to act upon was interstrand cross-linked DNA connected by an alkylene linkage at the O6-position of dG to the complementary strand. In the present study the activity of hOGT towards DNA containing alkylene intrastrand cross-links (IaCL) at the O6- and O4-positions respectively of dG and dT, which lack a phosphodiester linkage between the connected residues, was evaluated. The hOGT protein exhibited proficiency at removal of an alkylene linkage at the O6-atom of dG but the O4-position of dT was refractory to protein activity. The activity of the chimeric hOGT protein towards these IaCLs to prepare well defined DNA-protein cross-linked conjugates will enable mechanistic and high resolution structural studies to address the differences observed in the repair adeptness of O4-alkylated dT by the OGT protein relative to other AGT variants.

PMID: 30430154 [PubMed - indexed for MEDLINE]