White A, Tull D, Johns K, Withers S G, Rose D R
Protein Engineering Network of Centres of Excellence, Ontario Cancer Institute, Toronto, Canada.
Nat Struct Biol. 1996 Feb;3(2):149-54. doi: 10.1038/nsb0296-149.
The three-dimensional structure of a catalytically competent glycosyl-enzyme intermediate of a retaining beta-1,4-glycanase has been determined at a resolution of 1.8 A by X-ray diffraction. A fluorinated slow substrate forms an alpha-D-glycopyranosyl linkage to one of the two invariant carboxylates, Glu 233, as supported in solution by 19F-NMR studies. The resulting ester linkage is coplanar with the cyclic oxygen of the proximal saccharide and is inferred to form a strong hydrogen bond with the 2-hydroxyl of that saccharide unit in natural substrates. The active-site architecture of this covalent intermediate gives insights into both the classical double-displacement catalytic mechanism and the basis for the enzyme's specificity.
通过X射线衍射,已在1.8埃的分辨率下确定了一种保留型β-1,4-聚糖酶的具有催化活性的糖基-酶中间体的三维结构。一种氟化的慢底物与两个不变的羧酸盐之一(Glu 233)形成α-D-吡喃葡萄糖基连接,19F-NMR研究在溶液中证实了这一点。所得的酯键与近端糖的环氧化合物共面,并推断在天然底物中与该糖单元的2-羟基形成强氢键。这种共价中间体的活性位点结构为经典的双置换催化机制和酶特异性的基础提供了见解。