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Purification and Characterization of a Trehalose Synthase from the Basidiomycete Grifola frondosa

机译:拟南芥Grifola frondosa海藻糖合酶的纯化与鉴定

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摘要

A trehalose synthase (TSase) that catalyzes the synthesis of trehalose from d-glucose and α-d-glucose 1-phosphate (α-d-glucose 1-P) was detected in a basidiomycete, Grifola frondosa. TSase was purified 106-fold to homogeneity with 36% recovery by ammonium sulfate precipitation and several steps of column chromatography. The native enzyme appears to be a dimer since it has apparent molecular masses of 120 kDa, as determined by gel filtration column chromatography, and 60 kDa, as determined by sodium dodecyl sulfate-polyacrylamide gel electrophoresis. Although TSase catalyzed the phosphorolysis of trehalose to d-glucose and α-d-glucose 1-P, in addition to the synthesis of trehalose from the two substrates, the TSase equilibrium strongly favors trehalose synthesis. The optimum temperatures for phosphorolysis and synthesis of trehalose were 32.5 to 35°C and 35 to 37.5°C, respectively. The optimum pHs for these reactions were 6.5 and 6.5 to 6.8, respectively. The substrate specificity of TSase was very strict: among eight disaccharides examined, only trehalose was phosphorolyzed, and only α-d-glucose 1-P served as a donor substrate with d-glucose as the acceptor in trehalose synthesis. Two efficient enzymatic systems for the synthesis of trehalose from sucrose were identified. In system I, the α-d-glucose 1-P liberated by 1.05 U of sucrose phosphorylase was linked with d-glucose by 1.05 U of TSase, generating trehalose at the initial synthesis rate of 18 mmol/h in a final yield of 90 mol% under optimum conditions (300 mM each sucrose and glucose, 20 mM inorganic phosphate, 37.5°C, and pH 6.5). In system II, we added 1.05 U of glucose isomerase and 20 mM MgSO4 to the reaction mixture of system I to convert fructose, a by-product of the sucrose phosphorylase reaction, into glucose. This system generated trehalose at the synthesis rate of 4.5 mmol/h in the same final yield.
机译:在basidiomycete Grifola frondosa中检测到海藻糖合酶(TSase),该酶催化由d-葡萄糖和α-d-葡萄糖1-磷酸(α-d-葡萄糖1-P)合成海藻糖。通过硫酸铵沉淀和几步柱色谱纯化,将TSase纯化106倍至同质,回收率为36%。天然酶似乎是二聚体,因为它的表观分子量由凝胶过滤柱色谱法确定为120 kDa,由十二烷基硫酸钠-聚丙烯酰胺凝胶电泳确定为60 kDa。尽管TSase催化海藻糖的磷酸分解为d-葡萄糖和α-d-葡萄糖1-P,但除了由两种底物合成海藻糖外,TSase平衡也强烈促进了海藻糖的合成。海藻糖的磷解和合成的最佳温度分别为32.5至35°C和35至37.5°C。这些反应的最佳pH分别为6.5和6.5至6.8。 TSase的底物特异性非常严格:在检查的8种二糖中,只有海藻糖被磷酸化,只有α-d-葡萄糖1-P用作供体底物,d-葡萄糖是海藻糖合成的受体。鉴定了两种用于由蔗糖合成海藻糖的有效酶系统。在系统I中,将1.05 U蔗糖磷酸化酶释放的α-d-葡萄糖1-P与1.05 U TSase结合d-葡萄糖,以18 mmol / h的初始合成速率产生海藻糖,最终产率为90 mol%在最佳条件下(每种蔗糖和葡萄糖为300 mM,无机磷酸盐为20 mM,37.5°C,pH 6.5)。在系统II中,我们向系统I的反应混合物中添加了1.05 U的葡萄糖异构酶和20 mM MgSO4,以将果糖(蔗糖磷酸化酶反应的副产物)转化为葡萄糖。该系统以相同的最终产率以4.5mmol / h的合成速率产生海藻糖。

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