Notenboom V, Birsan C, Nitz M, Rose D R, Warren R A, Withers S G
Protein Engineering Network of Centres of Excellence, Ontario Cancer Institute and Department of Medical Biophysics, University of Toronto, Canada.
Nat Struct Biol. 1998 Sep;5(9):812-8. doi: 10.1038/1852.
The catalytic mechanism of 'retaining' beta-glycosidases has been the subject of considerable interest and debate for many years. The visualization of a covalent glycosyl enzyme intermediate by X-ray crystallography was first accomplished with a saccharide substrate substituted with fluorine at its 2-position. The structure implicated major roles for residue His 205 and for the 2-hydroxyl position of the proximal saccharide in binding and catalysis. Here we have studied the kinetic behavior of various His 205 mutants. One of these mutants, a double mutant H205N/E127A, has been used to stabilize a covalent glycosyl-enzyme intermediate involving an unsubstituted sugar, permitting crystallographic analysis of the interactions between its 2-hydroxyl group and the enzyme.
多年来,“保留型”β-糖苷酶的催化机制一直是备受关注和争论的话题。通过X射线晶体学首次实现了对共价糖基酶中间体的可视化,该中间体是由在其2位被氟取代的糖类底物形成的。该结构表明残基His 205和近端糖类的2-羟基在结合和催化中起主要作用。在这里,我们研究了各种His 205突变体的动力学行为。其中一个突变体,双突变体H205N/E127A,已被用于稳定涉及未取代糖的共价糖基酶中间体,从而允许对其2-羟基与酶之间的相互作用进行晶体学分析。