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Enzymatic synthesis of α-flavone glucoside via regioselective transglucosylation by amylosucrase from Deinococcus geothermalis

机译:地热球菌淀粉酶催化区域选择性转糖基化反应酶法合成α-黄酮苷

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摘要

α-Flavone glycosides have beneficial properties for applications in the pharmaceutical, cosmetic, and food industries. However, their chemical syntheses are often limited by a low efficiency or scarcity of substrates. In this study, α-flavone glucosides were enzymatically synthesized by amylosucrase from Deinococcus geothermalis (DGAS) using sucrose and various flavones as a donor for glucosyl units and acceptors, respectively. Luteolin was the most effective acceptor in the transglucosylation reaction using DGAS among nine flavone materials (apigenin, chrysin, 6,7-dihydroxyflavone, homoorientin, 7-hydroxyflavone, isorhoifolin, luteolin, luteolin-3′,7-diglucoside, and orientin). The highest production yield of luteolin glucoside was 86%, with a 7:1 molar ratio of donor to acceptor molecules, in 50 mM Tris-HCl buffer (pH 7) at 37°C for 24 h using 2 U of DGAS. The synthesized luteolin glucoside was identified as luteolin-4′-O-α-D-glucopyranoside with a glucose molecule linked to the C-4′ position on the B-ring of luteolin via an α-glucosidic bond, as determined by 1H and 13C nuclear magnetic resonance. This result clearly confirmed that the glucosylated luteolin was successfully synthesized by DGAS and it can be applied as a functional ingredient. Furthermore, this approach using DGAS has the potential to be utilized for the synthesis of various glucosylated products using different types of polyphenols to enhance their functionalities.
机译:α-黄酮苷具有在制药,化妆品和食品工业中应用的有益特性。然而,它们的化学合成通常受到底物效率低或缺乏的限制。在这项研究中,使用蔗糖和各种黄酮分别作为葡萄糖基单元和受体的供体,通过地热Deinococcus geothermalis(DGAS)的淀粉蔗​​糖酶酶促合成了α-黄酮糖苷。在9种黄酮类物质(芹菜素,chrysin,6,7-二羟基黄酮,高ororientin,7-羟基黄酮,异氟醚草酮,木犀草素,木犀草素3',7-二葡萄糖苷和Orientin)中,木犀草素是使用DGAS进行转糖基化反应中最有效的受体。使用2 U DGAS在50 mM Tris-HCl缓冲液(pH 7)中于37°C放置24 h,木犀草素葡萄糖苷的最高产率为86%,供体与受体分子的摩尔比为7:1。合成的木犀草素葡萄糖苷被鉴定为木犀草素-4'-O-α-D-吡喃葡萄糖苷,其葡萄糖分子通过α-糖苷键与木犀草素B环的C-4'位置相连, > 1 H和 13 C核磁共振。该结果清楚地证实了通过DGAS成功地合成了糖基木犀草素,并且其可以用作功能成分。此外,这种使用DGAS的方法有可能被用于使用不同类型的多酚来增强其功能的各种葡萄糖基化产物的合成。

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