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对一种包含多个碳水化合物结合模块的热稳定多结构域木聚糖酶-葡萄糖醛酸酯酶的研究。

Investigation of a thermostable multi-domain xylanase-glucuronoyl esterase enzyme from incorporating multiple carbohydrate-binding modules.

作者信息

Krska Daniel, Larsbrink Johan

机构信息

1Division of Industrial Biotechnology, Department of Biology and Biological Engineering, Chalmers University of Technology, 412 96 Gothenburg, Sweden.

2Wallenberg Wood Science Center, Chalmers University of Technology, 412 96 Gothenburg, Sweden.

出版信息

Biotechnol Biofuels. 2020 Apr 11;13:68. doi: 10.1186/s13068-020-01709-9. eCollection 2020.

Abstract

BACKGROUND

Efficient degradation of lignocellulosic biomass has become a major bottleneck in industrial processes which attempt to use biomass as a carbon source for the production of biofuels and materials. To make the most effective use of the source material, both the hemicellulosic as well as cellulosic parts of the biomass should be targeted, and as such both hemicellulases and cellulases are important enzymes in biorefinery processes. Using thermostable versions of these enzymes can also prove beneficial in biomass degradation, as they can be expected to act faster than mesophilic enzymes and the process can also be improved by lower viscosities at higher temperatures, as well as prevent the introduction of microbial contamination.

RESULTS

This study presents the investigation of the thermostable, dual-function xylanase-glucuronoyl esterase enzyme Xyn10C-GE15A from the hyperthermophilic bacterium . Biochemical characterization of the enzyme was performed, including assays for establishing the melting points for the different protein domains, activity assays for the two catalytic domains, as well as binding assays for the multiple carbohydrate-binding domains present in Xyn10C-GE15A. Although the enzyme domains are naturally linked together, when added separately to biomass, the expected boosting of the xylanase action was not seen. This lack of intramolecular synergy might suggest, together with previous data, that increased xylose release is not the main beneficial trait given by glucuronoyl esterases.

CONCLUSIONS

Due to its thermostability, Xyn10C-GE15A is a promising candidate for industrial processes, with both catalytic domains exhibiting melting temperatures over 70 °C. Of particular interest is the glucuronoyl esterase domain, as it represents the first studied thermostable enzyme displaying this activity.

摘要

背景

木质纤维素生物质的高效降解已成为工业生产过程中的一个主要瓶颈,这些工业生产试图将生物质用作生产生物燃料和材料的碳源。为了最有效地利用原料,生物质的半纤维素部分和纤维素部分都应作为目标,因此半纤维素酶和纤维素酶都是生物精炼过程中的重要酶。使用这些酶的耐热版本在生物质降解中也可能是有益的,因为可以预期它们的作用比嗜温酶更快,并且该过程还可以通过在较高温度下降低粘度来改进,以及防止引入微生物污染。

结果

本研究展示了对来自嗜热细菌的耐热双功能木聚糖酶-葡糖醛酸酯酶Xyn10C-GE15A的研究。对该酶进行了生化特性分析,包括确定不同蛋白质结构域熔点的测定、两个催化结构域的活性测定,以及对Xyn10C-GE15A中存在的多个碳水化合物结合结构域的结合测定。尽管酶结构域天然地连接在一起,但当分别添加到生物质中时,并未观察到预期的木聚糖酶作用增强。这种分子内协同作用的缺乏,连同先前的数据,可能表明木糖释放增加不是葡糖醛酸酯酶赋予的主要有益特性。

结论

由于其耐热性,Xyn10C-GE15A是工业生产过程中有前景的候选者,其两个催化结构域的熔点均超过70°C。特别值得关注的是葡糖醛酸酯酶结构域,因为它是首个被研究的具有这种活性的耐热酶。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/302e/7151638/1eca5357af9b/13068_2020_1709_Fig1_HTML.jpg

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