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六种核心糖苷水解酶的混合物优化,以最大限度地糖化氨纤维膨胀(AFEX)预处理玉米秸秆。

Mixture optimization of six core glycosyl hydrolases for maximizing saccharification of ammonia fiber expansion (AFEX) pretreated corn stover.

机构信息

Biomass Conversion Research Laboratory (BCRL), Department of Chemical Engineering and Materials Science, Michigan State University, MBI Building, 3900 Collins Road, Lansing, MI 48910, USA.

出版信息

Bioresour Technol. 2010 Apr;101(8):2770-81. doi: 10.1016/j.biortech.2009.10.056. Epub 2009 Nov 30.

Abstract

In this work, six core glycosyl hydrolases (GH) were isolated and purified from various sources to help rationally optimize an enzyme cocktail to digest ammonia fiber expansion (AFEX) treated corn stover. The four core cellulases were endoglucanase I (EG I, GH family 7B), cellobiohydrolase I (CBH I, GH family 7A), cellobiohydrolase II (CBH II, GH family 6A) and beta-glucosidase (betaG, GH family 3). The two core hemicellulases were an endo-xylanase (EX, GH family 11) and a beta-xylosidase (betaX, GH family 3). Enzyme family and purity were confirmed by proteomics. Synergistic interactions among the six core enzymes for varying relative and total protein loading (8.25, 16.5 and 33 mg/g glucan) during hydrolysis of AFEX-treated corn stover was studied using a high-throughput microplate based protocol. The optimal composition (based on% protein mass loading) of the cocktail mixture was CBH I (28.4%): CBH II (18.0%): EG I (31.0%): EX (14.1%): betaG (4.7%): betaX (3.8%). These results demonstrate a rational strategy for the development of a minimal, synergistic enzymes cocktail that could reduce enzyme usage and maximize the fermentable sugar yields from pretreated lignocellulosics.

摘要

在这项工作中,从各种来源中分离和纯化了六种核心糖苷水解酶(GH),以帮助合理优化酶混合物,以消化氨纤维膨胀(AFEX)处理的玉米秸秆。四种核心纤维素酶是内切葡聚糖酶 I(EG I,GH 家族 7B)、纤维二糖水解酶 I(CBH I,GH 家族 7A)、纤维二糖水解酶 II(CBH II,GH 家族 6A)和β-葡萄糖苷酶(βG,GH 家族 3)。两种核心半纤维素酶是内切木聚糖酶(EX,GH 家族 11)和β-木糖苷酶(βX,GH 家族 3)。通过蛋白质组学确认酶家族和纯度。使用基于高通量微板的方案,研究了在 AFEX 处理的玉米秸秆水解过程中,六种核心酶在不同相对和总蛋白加载量(8.25、16.5 和 33 mg/g 葡聚糖)下的协同作用。基于鸡尾酒混合物中(%蛋白质量加载)的最佳组成是 CBH I(28.4%):CBH II(18.0%):EG I(31.0%):EX(14.1%):βG(4.7%):βX(3.8%)。这些结果证明了开发最小协同酶混合物的合理策略,该策略可以减少酶的使用并最大限度地提高预处理木质纤维素的可发酵糖产量。

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