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一种新型蔗糖诱导表达系统及其在黑曲霉中生产生物质降解酶的应用。

A novel sucrose-inducible expression system and its application for production of biomass-degrading enzymes in Aspergillus niger.

作者信息

Wang Lu, Xie Yijia, Chang Jingjing, Wang Juan, Liu Hong, Shi Mei, Zhong Yaohua

机构信息

State Key Laboratory of Microbial Technology, Institute of Microbial Technology, Shandong University, Qingdao, 266237, People's Republic of China.

Qingdao Academy, Qingdao, 266111, People's Republic of China.

出版信息

Biotechnol Biofuels Bioprod. 2023 Feb 13;16(1):23. doi: 10.1186/s13068-023-02274-7.

Abstract

BACKGROUND

Filamentous fungi are extensively exploited as important enzyme producers due to the superior secretory capability. However, the complexity of their secretomes greatly impairs the titer and purity of heterologous enzymes. Meanwhile, high-efficient evaluation and production of bulk enzymes, such as biomass-degrading enzymes, necessitate constructing powerful expression systems for bio-refinery applications.

RESULTS

A novel sucrose-inducible expression system based on the host strain Aspergillus niger ATCC 20611 and the β-fructofuranosidase promoter (PfopA) was constructed. A. niger ATCC 20611 preferentially utilized sucrose for rapid growth and β-fructofuranosidase production. Its secretory background was relatively clean because β-fructofuranosidase, the key enzyme responsible for sucrose utilization, was essentially not secreted into the medium and the extracellular protease activity was low. Furthermore, the PfopA promoter showed a sucrose concentration-dependent induction pattern and was not subject to glucose repression. Moreover, the strength of PfopA was 7.68-fold higher than that of the commonly used glyceraldehyde-3-phosphate dehydrogenase promoter (PgpdA) with enhanced green fluorescence protein (EGFP) as a reporter. Thus, A. niger ATCC 20611 coupled with the PfopA promoter was used as an expression system to express a β-glucosidase gene (bgla) from A. niger C112, allowing the production of β-glucosidase at a titer of 17.84 U/mL. The crude β-glucosidase preparation could remarkably improve glucose yield in the saccharification of pretreated corncob residues when added to the cellulase mixture of Trichoderma reesei QM9414. The efficacy of this expression system was further demonstrated by co-expressing the T. reesei-derived chitinase Chi46 and β-N-acetylglucosaminidase Nag1 to obtain an efficient chitin-degrading enzyme cocktail, which could achieve the production of N-acetyl-D-glucosamine from colloidal chitin with a conversion ratio of 91.83%. Besides, the purity of the above-secreted biomass-degrading enzymes in the crude culture supernatant was over 86%.

CONCLUSIONS

This PfopA-driven expression system expands the genetic toolbox of A. niger and broadens the application field of the traditional fructo-oligosaccharides-producing strain A. niger ATCC 20611, advancing it to become a high-performing enzyme-producing cell factory. In particular, the sucrose-inducible expression system possessed the capacity to produce biomass-degrading enzymes at a high level and evade endogenous protein interference, providing a potential purification-free enzyme production platform for bio-refinery applications.

摘要

背景

丝状真菌因其卓越的分泌能力而被广泛用作重要的酶生产者。然而,其分泌组的复杂性极大地损害了异源酶的滴度和纯度。同时,高效评估和生产大量酶,如生物质降解酶,需要构建强大的表达系统用于生物炼制应用。

结果

构建了一种基于黑曲霉ATCC 20611宿主菌株和β-呋喃果糖苷酶启动子(PfopA)的新型蔗糖诱导表达系统。黑曲霉ATCC 20611优先利用蔗糖进行快速生长和β-呋喃果糖苷酶的生产。其分泌背景相对干净,因为负责蔗糖利用的关键酶β-呋喃果糖苷酶基本不分泌到培养基中,且细胞外蛋白酶活性较低。此外,PfopA启动子呈现出蔗糖浓度依赖性诱导模式,不受葡萄糖抑制。而且,以增强型绿色荧光蛋白(EGFP)为报告基因时,PfopA的强度比常用的甘油醛-3-磷酸脱氢酶启动子(PgpdA)高7.68倍。因此,将黑曲霉ATCC 20611与PfopA启动子结合用作表达系统来表达来自黑曲霉C112的β-葡萄糖苷酶基因(bgla),使得β-葡萄糖苷酶的产量达到17.84 U/mL。当将粗制的β-葡萄糖苷酶制剂添加到里氏木霉QM9414的纤维素酶混合物中时,可显著提高预处理玉米芯残渣糖化过程中的葡萄糖产量。通过共表达来自里氏木霉的几丁质酶Chi46和β-N-乙酰氨基葡萄糖苷酶Nag1以获得高效的几丁质降解酶混合物,进一步证明了该表达系统的有效性,该混合物能够从胶体几丁质生产N-乙酰-D-葡萄糖胺,转化率为91.83%。此外,粗培养上清液中上述分泌的生物质降解酶的纯度超过86%。

结论

这个由PfopA驱动的表达系统扩展了黑曲霉的遗传工具箱,拓宽了传统的低聚果糖生产菌株黑曲霉ATCC 20611的应用领域,推动其成为一个高性能的酶生产细胞工厂。特别是,该蔗糖诱导表达系统具有高水平生产生物质降解酶并避免内源性蛋白质干扰的能力,为生物炼制应用提供了一个潜在的无需纯化的酶生产平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cb03/9926565/eb2a50bc1f41/13068_2023_2274_Fig1_HTML.jpg

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