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从地衣芽孢杆菌 S09 中重组生产和表征全长和截短的β-1,3-葡聚糖酶 PglA。

Recombinant production and characterization of full-length and truncated β-1,3-glucanase PglA from Paenibacillus sp. S09.

机构信息

Center for Molecular Metabolism, Nanjing University of Science & Technology, 200 Xiaolingwei, Nanjing 210094, China.

出版信息

BMC Biotechnol. 2013 Nov 28;13:105. doi: 10.1186/1472-6750-13-105.

Abstract

BACKGROUND

β-1,3-Glucanases catalyze the hydrolysis of glucan polymers containing β-1,3-linkages. These enzymes are of great biotechnological, agricultural and industrial interest. The applications of β-1,3-glucanases is well established in fungal disease biocontrol, yeast extract production and wine extract clarification. Thus, the identification and characterization of novel β-1,3-glucanases with high catalytic efficiency and stability is of particular interest.

RESULTS

A β-1,3-glucanase gene designated PglA was cloned from a newly isolated strain Paenibacillus sp. S09. The gene PglA contained a 2631-bp open reading frame encoding a polypeptide of 876 amino acids which shows 76% identity with the β-1,3-glucanase (BglH) from Bacillus circulans IAM1165. The encoded protein PglA is composed of a signal peptide, an N-terminal leader region, a glycoside hydrolase family 16 (GH16) catalytic domain and a C-terminal immunoglobulin like (Ig-like) domain. The Escherichia coli expression system of PglA and five truncated derivatives containing one or two modules was constructed to investigate the role of catalytic and non-catalytic modules. The pH for optimal activity of the enzymes was slightly affected (pH 5.5-6.5) by the presence of different modules. However, the temperature for optimal activity was strongly influenced by the C-terminal domain and ranged from 50 to 60°C. Deletion of C-terminal domain resulted in obviously enhancing enzymatic thermostability. Specific activity assay indicated that PglA specifically hydrolyzes β-1,3-glucan. Insoluble β-1,3-glucan binding and hydrolysis were boosted by the presence of N-and C-terminal domains. Kinetic analysis showed that the presence of N-and C-terminus enhances the substrate affinity and catalytic efficiency of the catalytic domain toward laminarin. Carbohydrate-binding assay directly confirmed the binding capabilities of the N-and C-terminal domains.

CONCLUSIONS

This study provides new insight into the impacts of non-catalytic modules on enzymatic properties of β-1,3-glucanase. Activity comparison of full-length PglA and truncated forms revealed the negative effect of C-terminal region on thermal stability of the enzyme. Both the N-and C-terminal domains exerted strong binding activity toward insoluble β-1,3-glucan, and could be classified into CBM families.

摘要

背景

β-1,3-葡聚糖酶催化含有β-1,3-键的葡聚糖聚合物的水解。这些酶具有巨大的生物技术、农业和工业应用价值。β-1,3-葡聚糖酶在真菌病害生物防治、酵母抽提物生产和葡萄酒抽提物澄清中的应用已得到充分证实。因此,鉴定和表征具有高催化效率和稳定性的新型β-1,3-葡聚糖酶具有特别的意义。

结果

从一株新分离的芽孢杆菌属 S09 中克隆了一个β-1,3-葡聚糖酶基因 PglA。基因 PglA 包含一个 2631 个碱基对的开放阅读框,编码一个 876 个氨基酸的多肽,与环状芽孢杆菌 IAM1165 的β-1,3-葡聚糖酶(BglH)有 76%的同源性。编码的蛋白 PglA 由一个信号肽、一个 N 端前导区、一个糖苷水解酶家族 16(GH16)催化结构域和一个 C 端免疫球蛋白样(Ig-like)结构域组成。构建了 PglA 的大肠杆菌表达系统和包含一个或两个模块的五个截断衍生物,以研究催化和非催化模块的作用。不同模块的存在对酶的最适 pH 略有影响(pH5.5-6.5)。然而,最适温度强烈受 C 端结构域的影响,范围为 50-60°C。C 端结构域的缺失导致酶热稳定性明显增强。比活性测定表明,PglA 特异性水解β-1,3-葡聚糖。N 和 C 端结构域的存在增强了不溶性β-1,3-葡聚糖的结合和水解。动力学分析表明,N 和 C 端结构域的存在提高了催化结构域对昆布多糖的底物亲和力和催化效率。碳水化合物结合测定直接证实了 N 和 C 端结构域的结合能力。

结论

本研究为非催化模块对β-1,3-葡聚糖酶酶学性质的影响提供了新的见解。全长 PglA 和截断形式的活性比较表明,C 端区域对酶的热稳定性有负面影响。N 和 C 端结构域都对不溶性β-1,3-葡聚糖有很强的结合活性,可归入 CBM 家族。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f0d9/4219603/fb8232e645b2/1472-6750-13-105-1.jpg

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