Goedl Christiane, Schwarz Alexandra, Mueller Mario, Brecker Lothar, Nidetzky Bernd
Institute of Biotechnology and Biochemical Engineering, Graz University of Technology, Petersgasse 12, A-8010 Graz, Austria.
Carbohydr Res. 2008 Aug 11;343(12):2032-40. doi: 10.1016/j.carres.2008.01.029. Epub 2008 Feb 2.
Sucrose phosphorylase utilizes a glycoside hydrolase-like double displacement mechanism to convert its disaccharide substrate and phosphate into alpha-d-glucose 1-phosphate and fructose. Site-directed mutagenesis was employed to characterize the proposed roles of Asp(196) and Glu(237) as catalytic nucleophile and acid-base, respectively, in the reaction of sucrose phosphorylase from Leuconostoc mesenteroides. The side chain of Asp(295) is suggested to facilitate the catalytic steps of glucosylation and deglucosylation of Asp(196) through a strong hydrogen bond (23 kJ/mol) with the 2-hydroxyl of the glucosyl oxocarbenium ion-like species believed to be formed in the transition states flanking the beta-glucosyl enzyme intermediate. An assortment of biochemical techniques used to examine the mechanism of alpha-retaining glucosyl transfer by Schizophyllum commune alpha,alpha-trehalose phosphorylase failed to provide evidence in support of a similar two-step catalytic reaction via a covalent intermediate. Mutagenesis studies suggested a putative active-site structure for this trehalose phosphorylase that is typical of retaining glycosyltransferases of fold family GT-B and markedly different from that of sucrose phosphorylase. While ambiguity remains regarding the chemical mechanism by which the trehalose phosphorylase functions, the two disaccharide phosphorylases have evolved strikingly different reaction coordinates to achieve catalytic efficiency and stereochemical control in their highly analogous substrate transformations.
蔗糖磷酸化酶利用一种类似于糖苷水解酶的双置换机制,将其二糖底物和磷酸转化为α-D-葡萄糖1-磷酸和果糖。采用定点诱变来表征来自肠系膜明串珠菌的蔗糖磷酸化酶反应中,天冬氨酸(Asp)(196)和谷氨酸(Glu)(237)分别作为催化亲核试剂和酸碱的假定作用。天冬氨酸(295)的侧链被认为通过与据信在β-葡萄糖基酶中间体两侧的过渡态中形成的葡萄糖基氧碳鎓离子样物种的2-羟基形成强氢键(23 kJ/mol),促进天冬氨酸(196)的糖基化和去糖基化的催化步骤。用于研究裂褶菌α,α-海藻糖磷酸化酶进行α-保留糖基转移机制的一系列生化技术,未能提供证据支持通过共价中间体进行类似的两步催化反应。诱变研究表明,这种海藻糖磷酸化酶具有一个假定的活性位点结构,这是折叠家族GT-B的保留糖基转移酶所特有的,与蔗糖磷酸化酶的活性位点结构明显不同。虽然海藻糖磷酸化酶发挥作用的化学机制仍不明确,但这两种二糖磷酸化酶已经进化出截然不同的反应坐标,以便在其高度类似的底物转化中实现催化效率和立体化学控制。