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A Biocatalytic One-Pot Approach for the Preparation of Lignin Oligomers Using an Oxidase/Peroxidase Cascade Enzyme System

机译:使用氧化酶/过氧化物酶梯形酶制备木质素低聚物的生物催化一锅方法

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摘要

Synthetic lignin was prepared biocatalytically in a one-pot, two-step reaction using an oxidase/peroxidase cascade enzyme system. Using eugenol in combination with eugenol oxidase and a peroxidase, lignin-like material was produced. The cascade reaction takes advantage of the ability of the oxidase to produce coniferyl alcohol and hydrogen peroxide from eugenol and molecular oxygen. The hydrogen peroxide is used by the peroxidase for the formation of crosslinks that typify lignin. As eugenol oxidase has a broad substrate acceptance profile, also 4-allylphenol (chavicol) and 4-allyl-2,6-dimethoxyphenol could be used as precursors of the synthetic lignin. As a result, all three naturally occurring monolignols could be prepared and incorporated in the synthetic lignin. The reaction was optimized in order to achieve the highest possible yield of insoluble lignin oligomers and scaled up to 1 gram. Analysis of the water-insoluble product by gel permeation chromatography revealed the formation of relatively small lignin oligomers (approximate to 1000dalton). By using two-dimensional heteronuclear single quantum coherence nuclear magnetic resonance spectroscopy (2D HSQC NMR) analysis it could be demonstrated that the material contained alpha-O-4/-O-4, beta-O-4, beta-beta, beta-5 linkages and dibenzodioxocin units. All these features indicate that the biocatalytically produced material closely resembles natural lignin. While 54% of eugenol was converted into water-insoluble oligomers, the remaining substrate was converted into water-soluble dimers and tetramers which are important lignin model compounds. Therefore, the presented method represents a valuable and facile biocatalytic approach for the preparation of lignin-like material and potentially valuable chemicals.
机译:使用氧化酶/过氧化物酶梯形酶系统在单罐中生物催化制备合成木质素,两步反应。使用丁香酚与丁醇氧化酶和过氧化物酶组合,制备木质素状的材料。级联反应利用氧化酶产生来自丁醇和分子氧的果糖醇和过氧化氢的能力。过氧化物酶使用过氧化氢以形成键入木质素的交联。由于丁醇氧化酶具有宽的基质验收曲线,还可以使用4-烯丙基酚(Chavicol)和4-烯丙基-2,6-二甲氧基苯酚作为合成木质素的前体。结果,所有三种天然存在的单醇可以制备并掺入合成木质素中。优化反应以达到不溶性木质素低聚物的最高产量并缩放至1克。通过凝胶渗透色谱分析水不溶性产物揭示了相对小的木质素低聚物的形成(近似为1000dalton)。通过使用二维异核单量子相干核磁共振谱(2D HSQC NMR)分析,可以证明该材料含有α-O-4 / -O-4,β-O-4,Beta-β,β- 5个键和二甲二甲基霉素单位。所有这些特征表明,生物催化的材料非常类似于天然木质素。虽然将54%的丁醇转化为水不溶性低聚物,但剩余的基质转化为水溶性二聚体和四聚体,它们是重要的木质素模型化合物。因此,所提出的方法代表了制备木质素样材和潜在有价值的化学物质的有价值且易于的生物催化方法。

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