船虫 P. megotara 内共生体 GH5 纤维素酶家族的生物化学和结构特征。

Madan Junghare, Tamilvendan Manavalan, Lasse Fredriksen, Ingar Leiros, Bjørn Altermark, Vincent G H Eijsink, Gustav Vaaje-Kolstad
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引用次数: 0

摘要

背景:纤维素酶在将植物细胞壁多糖酶解转化为简单且具有经济价值的糖类过程中发挥着关键作用。因此,从奇异的生物壁龛中发现新型纤维素酶是非常有意义的,因为它们可能具有对木质纤维素生物质的生物炼制有价值的特性:我们鉴定了一种糖苷水解酶5(GH5)结构域,该结构域是一种双催化GH5-GH6多结构域酶,来自啃木船虫(Psiloteredo megotara)不寻常的鳃内共生菌Teredinibacter waterburyi。克隆了 GH5 催化结构域,并重组生产了带有或不带有 C 端家族 10 碳水化合物结合模块(CBM)的 GH5。两种变体分别对β-葡聚糖、羧甲基纤维素和魔芋葡甘露聚糖等可溶性底物表现出水解内活性。不过,对结晶形式的纤维素活性较低。有趣的是,当与具有纤维素活性的 LPMO 共同作用时,观察到了明显的协同作用,促进了结晶纤维素的整体水解。GH5 催化结构域的晶体结构分辨率达到了 1.0 Å,并发现了一个底物结合裂隙延伸部分,其中包含一个假定的 + 3 子位点,这在该酶家族中并不常见。该酶在很宽的 pH 值和温度范围内都有活性,并且对 NaCl 有很高的耐受性:这项研究为从船虫鳃内共生体中发现新的酶提供了重要的知识,并为纤维素分解纤维素酶的生物化学和结构表征提供了新的启示。研究表明,当纤维素酶与具有纤维素活性的 LPMO 共同作用时,纤维素酶对结晶纤维素的水解活性会增强。这些发现将有助于开发未来的鸡尾酒酶,用于木质纤维素的生物技术转化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Biochemical and structural characterisation of a family GH5 cellulase from endosymbiont of shipworm P. megotara.

Biochemical and structural characterisation of a family GH5 cellulase from endosymbiont of shipworm P. megotara.

Biochemical and structural characterisation of a family GH5 cellulase from endosymbiont of shipworm P. megotara.

Biochemical and structural characterisation of a family GH5 cellulase from endosymbiont of shipworm P. megotara.

Background: Cellulases play a key role in the enzymatic conversion of plant cell-wall polysaccharides into simple and economically relevant sugars. Thus, the discovery of novel cellulases from exotic biological niches is of great interest as they may present properties that are valuable in the biorefining of lignocellulosic biomass.

Results: We have characterized a glycoside hydrolase 5 (GH5) domain of a bi-catalytic GH5-GH6 multi-domain enzyme from the unusual gill endosymbiont Teredinibacter waterburyi of the wood-digesting shipworm Psiloteredo megotara. The catalytic GH5 domain, was cloned and recombinantly produced with or without a C-terminal family 10 carbohydrate-binding module (CBM). Both variants showed hydrolytic endo-activity on soluble substrates such as β-glucan, carboxymethylcellulose and konjac glucomannan, respectively. However, low activity was observed towards the crystalline form of cellulose. Interestingly, when co-incubated with a cellulose-active LPMO, a clear synergy was observed that boosted the overall hydrolysis of crystalline cellulose. The crystal structure of the GH5 catalytic domain was solved to 1.0 Å resolution and revealed a substrate binding cleft extension containing a putative + 3 subsite, which is uncommon in this enzyme family. The enzyme was active in a wide range of pH, temperatures and showed high tolerance for NaCl.

Conclusions: This study provides significant knowledge in the discovery of new enzymes from shipworm gill endosymbionts and sheds new light on biochemical and structural characterization of cellulolytic cellulase. Study demonstrated a boost in the hydrolytic activity of cellulase on crystalline cellulose when co-incubated with cellulose-active LPMO. These findings will be relevant for the development of future enzyme cocktails that may be useful for the biotechnological conversion of lignocellulose.

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