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添加碳水化合物结合模块可增强纤维素酶对纤维素底物的穿透性。

Addition of a carbohydrate-binding module enhances cellulase penetration into cellulose substrates.

机构信息

Deconstruction Division, Joint BioEnergy Institute, Emeryville, CA 94608, US.

出版信息

Biotechnol Biofuels. 2013 Jul 3;6(1):93. doi: 10.1186/1754-6834-6-93.

Abstract

INTRODUCTION

Cellulases are of great interest for application in biomass degradation, yet the molecular details of the mode of action of glycoside hydrolases during degradation of insoluble cellulose remain elusive. To further improve these enzymes for application at industrial conditions, it is critical to gain a better understanding of not only the details of the degradation process, but also the function of accessory modules.

METHOD

We fused a carbohydrate-binding module (CBM) from family 2a to two thermophilic endoglucanases. We then applied neutron reflectometry to determine the mechanism of the resulting enhancements.

RESULTS

Catalytic activity of the chimeric enzymes was enhanced up to three fold on insoluble cellulose substrates as compared to wild type. Importantly, we demonstrate that the wild type enzymes affect primarily the surface properties of an amorphous cellulose film, while the chimeras containing a CBM alter the bulk properties of the amorphous film.

CONCLUSION

Our findings suggest that the CBM improves the efficiency of these cellulases by enabling digestion within the bulk of the film.

摘要

简介

纤维素酶在生物质降解方面具有重要的应用价值,但糖苷水解酶在降解不溶性纤维素过程中的作用模式的分子细节仍难以捉摸。为了在工业条件下进一步改进这些酶,不仅需要更好地了解降解过程的细节,还需要了解辅助模块的功能。

方法

我们将来自家族 2a 的碳水化合物结合模块 (CBM) 融合到两种嗜热内切葡聚糖酶上。然后,我们应用中子反射法来确定由此产生的增强作用的机制。

结果

与野生型相比,杂合酶在不溶性纤维素底物上的催化活性提高了 3 倍。重要的是,我们证明了野生型酶主要影响无定形纤维素膜的表面性质,而含有 CBM 的嵌合体则改变了无定形膜的体相性质。

结论

我们的研究结果表明,CBM 通过允许在膜的体相中进行消化,提高了这些纤维素酶的效率。

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