T4 phage β-glucosyltransferase:: Substrate binding and proposed catalytic mechanism

被引:101
|
作者
Moréra, S
Imberty, A
Aschke-Sonnenborn, U
Rüger, W
Freemont, PS
机构
[1] Imperial Canc Res Fund, Mol Struct & Funct Lab, London WC2A 3PX, England
[2] CNRS, Ctr Rech Macromol Vegetales, F-38041 Grenoble 9, France
[3] Ruhr Univ Bochum, Fak Biol, Arbeitsgrp Mol Genet, D-4630 Bochum, Germany
关键词
glucosyltransferase; DNA modification; base flipping; X-ray crystallography; T-phage;
D O I
10.1006/jmbi.1999.3094
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
beta-Glucosyltransferase (BGT) is a DNA-modifying enzyme encoded by bacteriophage T4 which catalyses the transfer of glucose (Glc) from uridine diphosphoglucose (UDP-Glc) to 5-hydroxymethylcytosine (5-HMC) in double-stranded DNA. The glucosylation of T4 phage DNA is part of a phage DNA protection system aimed at host nucleases. We previously reported the first three-dimensional structure of BGT determined from crystals grown in ammonium sulphate containing UDP-Glc. In this previous structure, we did not observe electron density for the Glc moiety of UDP-Glc nor for two large surface loop regions (residues 68-76 and 109-122). Here we report two further BGT co-crystal structures, in the presence of UDP product (form I) and donor substrate YDP-Glc (form II), respectively. Form I crystals are grown in ammonium sulphate and the structure has been determined to 1.88 Angstrom resolution (R-factor 19.1%). Form II crystals are grown in polyethyleneglycol 4000 and the structure has been solved to 2.3 Angstrom resolution (R-factor 19.8%). The form I structure is isomorphous to our previous BGT UDP-Glc structure. The form II structure, however, has allowed us to model the two missing surface loop regions and thus provides the first complete structural description of BGT. In this low-salt crystal form, we see no electron density for the Glc moiety from UDP-Glc similar to previous observations. Biochemical data however, shows that BGT can cleave UDP-Glc in the absence of DNA acceptor, which probably accounts for the absence of Glc in our UDP-Glc substrate structures. The complete BGT structure now provides a basis for detailed modelling of a BGT HMC-DNA ternary complex. By using the structural similarity between the catalytic core of glycogen phosphorylase (GP) and BGT, we have modelled the position of the Glc moiety in UDP-Glc. From these two models, we propose a catalytic mechanism for BGT and identify residues involved in both DNA binding and in stabilizing a "flipped-out" 5-HMC nucleotide. (C) 1999 Academic Press.
引用
收藏
页码:717 / 730
页数:14
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