首页> 外文期刊>Applied and Environmental Microbiology >Carbohydrate-Binding Module–Cyclodextrin Glycosyltransferase Fusion Enables Efficient Synthesis of 2-O-d-Glucopyranosyl-l-Ascorbic Acid with Soluble Starch as the Glycosyl Donor
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Carbohydrate-Binding Module–Cyclodextrin Glycosyltransferase Fusion Enables Efficient Synthesis of 2-O-d-Glucopyranosyl-l-Ascorbic Acid with Soluble Starch as the Glycosyl Donor

机译:碳水化合物结合模块–环糊精糖基转移酶融合能够以可溶性淀粉为糖基供体的2-O-d-Glucopyranosyl-1-抗坏血酸的高效合成

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In this study, we achieved the efficient synthesis of 2-O-d-glucopyranosyl-l-ascorbic acid (AA-2G) from soluble starch by fusing a carbohydrate-binding module (CBM) from Alkalimonas amylolytica α-amylase (CBMAmy) to cyclodextrin glycosyltransferase (CGTase) from Paenibacillus macerans. One fusion enzyme, CGT-CBMAmy, was constructed by fusing the CBMAmy to the C-terminal region of CGTase, and the other fusion enzyme, CGTΔE-CBMAmy, was obtained by replacing the E domain of CGTase with CBMAmy. The two fusion enzymes were then used to synthesize AA-2G from soluble starch as a cheap and easily soluble glycosyl donor. Under the optimal conditions, the AA-2G yields produced using CGTΔE-CBMAmy and CGT-CBMAmy were 2.01 g/liter and 3.03 g/liter, respectively, which were 3.94- and 5.94-fold of the yield from the wild-type CGTase (0.51 g/liter). The reaction kinetics of the two fusion enzymes were analyzed and modeled to confirm the enhanced specificity toward soluble starch. It was also found that, compared to the wild-type CGTase, the two fusion enzymes had relatively high hydrolysis and disproportionation activities, factors that favor AA-2G synthesis. Finally, it was speculated that the enhancement of soluble starch specificity may be related to the changes of substrate binding ability and the substrate binding sites between the CBM and the starch granule.
机译:在这项研究中,我们通过将解淀粉酶α-淀粉酶(CBMAmy)的糖结合模块(CBM)融合到环糊精糖基转移酶上,从可溶性淀粉中成功合成了2-Od-吡喃葡萄糖基-1-抗坏血酸(AA-2G)。 (Macroans Paenibacillus macerans)(CGTase)。通过将CBMAmy融合到CGTase的C末端区域来构建一种融合酶CGT-CBMAmy,并且通过用CBMAmy替换CGTase的E结构域来获得另一种融合酶CGTΔE-CBMAmy。然后将这两种融合酶用作廉价且易溶的糖基供体,由可溶性淀粉合成AA-2G。在最佳条件下,使用CGTΔE-CBMAmy和CGT-CBMAmy产生的AA-2G产量分别为2.01 g /升和3.03 g /升,分别是野生型CGTase产量的3.94和5.94倍( 0.51克/升)。对这两种融合酶的反应动力学进行了分析和建模,以证实其对可溶性淀粉的特异性增强。还发现,与野生型CGT酶相比,这两种融合酶具有相对较高的水解和歧化活性,这是促进AA-2G合成的因素。最后,推测可溶性淀粉特异性的提高可能与底物结合能力和CBM与淀粉颗粒之间底物结合位点的变化有关。

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