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Rapid adaptation for fibre degradation by changes in plasmid stoichiometry within Lactobacillus plantarum at the synthetic community level

机译:通过在合成群落水平的乳杆菌属植物体中质粒化学计量变化的快速适应纤维降解

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Summary The multi‐enzyme cellulosome complex can mediate the valorization of lignocellulosic biomass into soluble sugars that can serve in the production of biofuels and valuable products. A potent bacterial chassis for the production of active cellulosomes displayed on the cell surface is the bacterium Lactobacillus plantarum, a lactic acid bacterium used in many applications. Here, we developed a methodological pipeline to produce improved designer cellulosomes, using a cell‐consortium approach, whereby the different components self‐assemble on the surface of L. plantarum. The pipeline served as a vehicle to select and optimize the secretion efficiency of potent designer cellulosome enzyme components, to screen for the most efficient enzymatic combinations and to assess attempts to grow the engineered bacterial cells on wheat straw as a sole carbon source. Using this strategy, we were able to improve the secretion efficiency of the selected enzymes and to secrete a fully functional high‐molecular‐weight scaffoldin component. The adaptive laboratory process served to increase significantly the enzymatic activity of the most efficient cell consortium. Internal plasmid re‐arrangement towards a higher enzymatic performance attested for the suitability of the approach, which suggests that this strategy represents an efficient way for microbes to adapt to changing conditions.
机译:发明内容多酶纤维素体复合物可以介导木质纤维素生物质的储存,该糖可以用于生产生物燃料和有价值产品中的可溶性糖。用于生产在细胞表面上显示的活性纤维素的有效的细菌底盘是乳酸杆菌属植物杆菌,一种用于许多应用中使用的乳酸菌。在这里,我们开发了一种方法管线,用于使用细胞聚集方法生产改进的设计者纤维素,从而在L.Playarum的表面上自组装自组装。该管道作为一种用于选择和优化有效设计师纤维素组分的分泌效率的载体,以筛选最有效的酶组合,并评估麦秸上的工程细菌细胞作为唯一碳源的筛选。使用该策略,我们能够改善所选酶的分泌效率,并分泌完全官能的高分子量硅化丁蛋白组分。自适应实验室过程有助于显着增加最有效的细胞联盟的酶活性。内部质粒重新安排朝着较高的酶促性能,证明了这种方法的适用性,这表明该策略代表了微生物以适应变化条件的有效方法。

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