首页> 美国卫生研究院文献>Biochemical Journal >Alpha-retaining glucosyl transfer catalysed by trehalose phosphorylase from Schizophyllum commune: mechanistic evidence obtained from steady-state kinetic studies with substrate analogues and inhibitors.
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Alpha-retaining glucosyl transfer catalysed by trehalose phosphorylase from Schizophyllum commune: mechanistic evidence obtained from steady-state kinetic studies with substrate analogues and inhibitors.

机译:海藻糖磷酸化酶催化裂藻糖化酶催化的保留α的葡糖基转移:从稳态动力学研究中使用底物类似物和抑制剂获得的机理证据。

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摘要

Fungal trehalose phosphorylase is classified as a family 4 glucosyltransferase that catalyses the reversible phosphorolysis of alpha,alpha-trehalose with net retention of anomeric configuration. Glucosyl transfer to and from phosphate takes place by the partly rate-limiting interconversion of ternary enzyme-substrate complexes formed from binary enzyme-phosphate and enzyme-alpha-d-glucopyranosyl phosphate adducts respectively. To advance a model of the chemical mechanism of trehalose phosphorylase, we performed a steady-state kinetic study with the purified enzyme from the basidiomycete fungus Schizophyllum commune by using alternative substrates, inhibitors and combinations thereof in pairs as specific probes of substrate-binding recognition and transition-state structure. Orthovanadate is a competitive inhibitor against phosphate and alpha-d-glucopyranosyl phosphate, and binds 3 x 10(4)-fold tighter (K(i) approximately 1 microM) than phosphate. Structural alterations of d-glucose at C-2 and O-5 are tolerated by the enzyme at subsite +1. They lead to parallel effects of approximately the same magnitude (slope=1.14; r(2)=0.98) on the reciprocal catalytic efficiency for reverse glucosyl transfer [log (K(m)/k(cat))] and the apparent affinity of orthovanadate determined in the presence of the respective glucosyl acceptor (log K(i)). An adduct of orthovanadate and the nucleophile/leaving group bound at subsite +1 is therefore the true inhibitor and displays partial transition state analogy. Isofagomine binds to subsite -1 in the enzyme-phosphate complex with a dissociation constant of 56 microM and inhibits trehalose phosphorylase at least 20-fold better than 1-deoxynojirimycin. The specificity of the reversible azasugars inhibitors would be explained if a positive charge developed on C-1 rather than O-5 in the proposed glucosyl cation-like transition state of the reaction. The results are discussed in the context of alpha-retaining glucosyltransferase mechanisms that occur with and without a beta-glucosyl enzyme intermediate.
机译:真菌海藻糖磷酸化酶被归类为第4族葡萄糖基转移酶,可催化α,α-海藻糖的可逆磷酸分解,并保留端基异构体结构。通过分别由二元酶-磷酸酯酶和酶-α-d-吡喃葡萄糖基磷酸酯加合物形成的三元酶-底物复合物的部分限速互变,发生糖基向磷酸酯的转移和从磷酸酯的转移。为了建立海藻糖磷酸化酶化学机制的模型,我们使用来自担子菌真菌Schizophyllum社的纯化酶,通过使用替代底物,抑制剂及其组合成对作为底物结合识别和特异性探针,进行了稳态动力学研究。过渡态结构。原钒酸盐是抗磷酸盐和α-d-吡喃葡萄糖基磷酸盐的竞争性抑制剂,与磷酸盐的结合力比磷酸盐高3 x 10(4)倍(K(i)约1 microM)。在C-2和O-5处的d-葡萄糖的结构变化被亚位点+1的酶所耐受。它们导致反向糖基转移的相互催化效率[log(K(m)/ k(cat))]和表观亲和力的近似相同幅度(斜率= 1.14; r(2)= 0.98)的平行效应。在各自的葡萄糖基受体存在下测定原钒酸酯(log K(i))。因此,原钒酸酯和结合在亚位点+1处的亲核试剂/离去基团的加合物是真正的抑制剂,并显示出部分过渡态类似物。异黄酮以56 microM的解离常数与酶-磷酸盐复合物中的亚位点-1结合,比1-脱氧野n霉素抑制海藻糖磷酸化酶的作用至少强20倍。如果在所提出的反应中建议的葡糖基阳离子样过渡态下,在C-1而不是O-5上产生正电荷,则可解释可逆氮杂糖抑制剂的特异性。在具有和不具有β-葡糖基酶中间体的情况下发生的α-保留葡糖基转移酶机制的背景下讨论了结果。

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