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Family 1 carbohydrate binding-modules enhance saccharification rates

机译:1族碳水化合物结合模块提高糖化率

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摘要

Cellulose degrading enzymes usually have a two-domain structure consisting of a catalytic domain and a non-catalytic carbohydrate-binding module. Although it is well known the importance of those modules in cell wall degrading process, their function is not yet fully understood. Here, we analyze the cellulose-hydrolysis activity enhancement promoted by the cellobiohydrolase I carbohydrate-binding module from Trichoderma harzianum. It was cloned, expressed, purified and used in combination with either a commercial cellulase preparation, T. reesei cellobiohydrolase I or its separate catalytic domain to hydrolyze filter paper. In all cases the amount of glucose released was increased, reaching up to 30% gain when the carbohydrate-binding module was added to the reaction. We also show that this effect seems to be mediated by a decrease in the recalcitrance of the cellulosic substrate. This effect was observed both for crystalline cellulose samples which underwent incubation with the CBM prior to application of cellulases and for the ones incubated simultaneously. Our studies demonstrate that family 1 carbohydrate-binding modules are able to potentiate the enzymatic degradation of the polysaccharides and their application might contribute to diminishing the currently prohibitive costs of the lignocellulose saccharification process.
机译:纤维素降解酶通常具有由催化结构域和非催化碳水化合物结合模块组成的两结构域结构。尽管众所周知这些模块在细胞壁降解过程中的重要性,但是它们的功能尚未完全被理解。在这里,我们分析了来自木霉菌的纤维二糖水解酶I碳水化合物结合模块促进的纤维素水解活性的提高。将其克隆,表达,纯化并与商业纤维素酶制剂,里氏木霉纤维二糖水解酶I或其单独的催化结构域结合使用,以水解滤纸。在所有情况下,释放的葡萄糖量都会增加,当将碳水化合物结合模块添加到反应中时,葡萄糖的释放量最多可增加30%。我们还表明,这种作用似乎是由纤维素底物顽固性降低引起的。对于在施用纤维素酶之前与CBM一起温育的结晶纤维素样品以及同时温育的结晶纤维素样品均观察到了这种效果。我们的研究表明,家族1的碳水化合物结合模块能够增强多糖的酶促降解,其应用可能有助于降低木质纤维素糖化过程中目前令人望而却步的成本。

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