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首页> 外文期刊>Journal of molecular catalysis, B. Enzymatic >Enzymatic synthesis of cyclohexyl-α and β-D-glucosides catalyzed by α- and β-glucosidase in a biphase system
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Enzymatic synthesis of cyclohexyl-α and β-D-glucosides catalyzed by α- and β-glucosidase in a biphase system

机译:α-和β-葡萄糖苷酶在双相体系中酶促合成环己基-α和β-D-葡萄糖苷

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Two secondary alcohol glucosides, cyclohexyl-α-D-glucoside and cyclohexyl-β-D-glucoside, were synthesized via the condensation reaction of cyclohexanol with D-glucose in a biphase system catalyzed by α-glucosidase and β-glucosidase, respectively. The effects of pH, water content, glucose concentration and metal ions on the yield of glucosides were studied. The optimum catalytic conditions established for α-glucosidase was 25% (v/v) water content, 2.5 mol/L glucose concentration and pH 2.0, and for β-glucosidase was 30% (v/v) water content, 2.0 mol/L glucose and pH 5.0. The maximum yield of glucoside was 13.3 mg/mL for cyclohexyl-α-D-glucoside and 8.9 mg/mL for cyclohexyl-β-D-glucoside. Synthesis progress was monitored by TLC and quantitatively analyzed by pre-derived capillary gas chromatography (GC). The retention time was 12.34 min for the α isomer and 12.96 min for the β isomer, respectively. With an anomeric purity of more than 99.5%, the two glucosides display excellent site-specific catalysis by α-and β-glucosidase. Herein, we present a general method to produce anomerically pure glucosides via a one-step bio-reaction in a biphase system. This method could potentially be applied in glucosylation of primary and secondary alcohols or other reactions requiring glucosylation.
机译:通过环己醇与D-葡萄糖在双相体系中分别由α-葡萄糖苷酶和β-葡萄糖苷酶催化的缩合反应,合成了两种仲醇葡萄糖苷,即环己基-α-D-葡萄糖苷和环己基-β-D-葡萄糖苷。研究了pH,含水量,葡萄糖浓度和金属离子对葡萄糖苷产量的影响。为α-葡萄糖苷酶确定的最佳催化条件为水含量为25%(v / v),葡萄糖浓度为2.5 mol / L,pH为2.0;对于β-葡萄糖苷酶确定的最佳催化条件为水含量为30%(v / v),2.0 mol / L葡萄糖和pH 5.0。环己基-α-D-葡萄糖苷的最大苷产量为13.3 mg / mL,而环己基-β-D-葡萄糖苷的最大产量为8.9 mg / mL。通过TLC监测合成进度,并通过预先衍生的毛细管气相色谱法(GC)进行定量分析。 α异构体的保留时间为12.34分钟,β异构体的保留时间为12.96分钟。两种葡糖苷的端基异构体纯度均超过99.5%,通过α-和β-葡糖苷酶表现出出色的位点特异性催化作用。在这里,我们提出了一种通过双相系统中的一步式生物反应来生产异构纯的葡萄糖苷的通用方法。该方法可潜在地用于伯醇和仲醇的糖基化或其他需要糖基化的反应中。

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