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首页> 外文期刊>Biotechnology for Biofuels >The role of acetyl xylan esterase in the solubilization of xylan and enzymatic hydrolysis of wheat straw and giant reed
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The role of acetyl xylan esterase in the solubilization of xylan and enzymatic hydrolysis of wheat straw and giant reed

机译:乙酰木聚糖酯酶在小麦秸秆和巨型芦苇的木聚糖增溶和酶水解中的作用

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Background Due to the complexity of lignocellulosic materials, a complete enzymatic hydrolysis into fermentable sugars requires a variety of cellulolytic and xylanolytic enzymes. Addition of xylanases has been shown to significantly improve the performance of cellulases and to increase cellulose hydrolysis by solubilizing xylans in lignocellulosic materials. The goal of this work was to investigate the effect of acetyl xylan esterase (AXE) originating from Trichoderma reesei on xylan solubilization and enzymatic hydrolysis of cellulose. Results The solubilization of xylan in pretreated wheat straw and giant reed (Arundo donax) by xylanolytic enzymes and the impact of the sequential or simultaneous solubilization of xylan on the hydrolysis of cellulose by purified enzymes were investigated. The results showed that the removal of acetyl groups in xylan by AXE increased the accessibility of xylan to xylanase and improved the hydrolysis of xylan in pretreated wheat straw and giant reed. Solubilization of xylan led to an increased accessibility of cellulose to cellulases and thereby increased the hydrolysis extent of cellulose. A clear synergistic effect between cellulases and xylanolytic enzymes was observed. The highest hydrolysis yield of cellulose was obtained with a simultaneous use of cellulases, xylanase and AXE, indicating the presence of acetylated xylan within the cellulose matrix. Acetylated xylobiose and acetylated xylotriose were produced from xylan without AXE, as confirmed by atmospheric pressure matrix-assisted laser desorption/ionization ion trap mass spectrometry. Conclusions The results in this paper demonstrate that supplementation of xylanase with AXE enhances the solubilization of xylan to some extent and, consequently, increases the subsequent hydrolysis of cellulose. The highest hydrolysis yield was, however, obtained by simultaneous hydrolysis of xylan and cellulose, indicating a layered structure of cellulose and xylan chains in the cell wall substrate. AXE has an important role in the hydrolysis of lignocellulosic materials containing acetylated xylan.
机译:背景技术由于木质纤维素材料的复杂性,将完整的酶水解成可发酵的糖需要多种纤维素分解和木聚糖分解酶。已显示木聚糖酶的添加可通过将木聚糖溶解在木质纤维素材料中来显着改善纤维素酶的性能并增加纤维素水解。这项工作的目的是研究源自里氏木霉的乙酰木聚糖酯酶(AXE)对纤维素的木聚糖增溶和酶促水解的影响。结果研究了木聚糖酶对预处理过的麦草和大芦苇(Arundo donax)中木聚糖的溶解以及木聚糖顺序或同时溶解对纯化酶水解纤维素的影响。结果表明,通过AX去除木聚糖中的乙酰基增加了木聚糖对木聚糖酶的可及性,并改善了预处理的麦草和大芦苇中木聚糖的水解。木聚糖的增溶导致纤维素对纤维素酶的可及性增加,从而增加了纤维素的水解程度。观察到纤维素酶和木聚糖分解酶之间明显的协同作用。同时使用纤维素酶,木聚糖酶和AXE可获得最高的纤维素水解产量,表明在纤维素基质中存在乙酰化的木聚糖。大气压基质辅助激光解吸/电离离子阱质谱法证实,乙酰化木糖和乙酰化木糖是从没有AXE的木聚糖中产生的。结论本文的结果表明,用AX补充木聚糖酶可在一定程度上增强木聚糖的增溶作用,并因此增加随后纤维素的水解。然而,通过同时水解木聚糖和纤维素可获得最高的水解产率,表明细胞壁基质中纤维素和木聚糖链的层状结构。 AX在含有乙酰化木聚糖的木质纤维素材料的水解中起重要作用。

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