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来自特异腐质霉Y1的对D-木糖具有高耐受性的新型3家族中性β-木糖苷酶的高水平表达。

High level expression of a novel family 3 neutral β-xylosidase from Humicola insolens Y1 with high tolerance to D-xylose.

作者信息

Xia Wei, Shi Pengjun, Xu Xinxin, Qian Lichun, Cui Ying, Xia Mengjuan, Yao Bin

机构信息

College of Animal Science, Zhejiang University, Hangzhou 310058, P. R. China; Key Laboratory for Feed Biotechnology of the Ministry of Agriculture, Feed Research Institute, Chinese Academy of Agricultural Sciences, Beijing 100081, P. R. China.

Key Laboratory for Feed Biotechnology of the Ministry of Agriculture, Feed Research Institute, Chinese Academy of Agricultural Sciences, Beijing 100081, P. R. China.

出版信息

PLoS One. 2015 Feb 6;10(2):e0117578. doi: 10.1371/journal.pone.0117578. eCollection 2015.

Abstract

A novel β-xylosidase gene of glycosyl hydrolase (GH) family 3, xyl3A, was identified from the thermophilic fungus Humicola insolens Y1, which is an innocuous and non-toxic fungus that produces a wide variety of GHs. The cDNA of xyl3A, 2334 bp in length, encodes a 777-residue polypeptide containing a putative signal peptide of 19 residues. The gene fragment without the signal peptide-coding sequence was cloned and overexpressed in Pichia pastoris GS115 at a high level of 100 mg/L in 1-L Erlenmeyer flasks without fermentation optimization. Recombinant Xyl3A showed both β-xylosidase and α-arabinfuranosidase activities, but had no hydrolysis capacity towards polysaccharides. It was optimally active at pH 6.0 and 60°C with a specific activity of 11.6 U/mg. It exhibited good stability over pH 4.0-9.0 (incubated at 37°C for 1 h) and at temperatures of 60°C and below, retaining over 80% maximum activity. The enzyme had stronger tolerance to xylose than most fungal GH3 β-xylosidases with a high Ki value of 29 mM, which makes Xyl3A more efficient to produce xylose in fermentation process. Sequential combination of Xyl3A following endoxylanase Xyn11A of the same microbial source showed significant synergistic effects on the degradation of various xylans and deconstructed xylo-oligosaccharides to xylose with high efficiency. Moreover, using pNPX as both the donor and acceptor, Xyl3A exhibited a transxylosylation activity to synthesize pNPX2. All these favorable properties suggest that Xyl3A has good potential applications in the bioconversion of hemicelluloses to biofuels.

摘要

从嗜热真菌特异腐质霉Y1中鉴定出一种糖基水解酶(GH)家族3的新型β-木糖苷酶基因xyl3A,特异腐质霉Y1是一种无毒无害且能产生多种GH的真菌。xyl3A的cDNA长度为2334 bp,编码一个777个残基的多肽,其中包含一个19个残基的假定信号肽。在未进行发酵优化的情况下,将不含信号肽编码序列的基因片段克隆到毕赤酵母GS115中,并在1-L锥形瓶中以100 mg/L的高水平进行了过表达。重组Xyl3A同时具有β-木糖苷酶和α-阿拉伯呋喃糖苷酶活性,但对多糖没有水解能力。它在pH 6.0和60°C时活性最佳,比活性为11.6 U/mg。在pH 4.0 - 9.0(37°C孵育1小时)以及60°C及以下温度下表现出良好的稳定性,保留超过80%的最大活性。该酶对木糖的耐受性比大多数真菌GH3β-木糖苷酶更强,其Ki值高达29 mM,这使得Xyl3A在发酵过程中生产木糖的效率更高。来自同一微生物源的木聚糖内切酶Xyn11A之后依次组合Xyl3A,对各种木聚糖的降解以及将木寡糖高效解构为木糖显示出显著的协同效应。此外,以对硝基苯-β-D-木糖苷(pNPX)作为供体和受体,Xyl3A表现出转木糖苷化活性以合成对硝基苯-β-D-木二糖苷(pNPX2)。所有这些优良特性表明Xyl3A在半纤维素生物转化为生物燃料方面具有良好的潜在应用价值。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/90d6/4320052/9070b3498da9/pone.0117578.g001.jpg

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