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首页> 外文期刊>Enzyme and Microbial Technology >Bi-functional cellulases complexes displayed on the cell surface of Corynebacterium glutamicum increase hydrolysis of lignocelluloses at elevated temperature
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Bi-functional cellulases complexes displayed on the cell surface of Corynebacterium glutamicum increase hydrolysis of lignocelluloses at elevated temperature

机译:谷氨酸棒杆菌细胞表面上显示的双功能纤维素酶复合物可提高木质纤维素在高温下的水解

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Introducing cellulases into Corynebacterium glutamicum leads to the direct degradation of lignocellu-losic materials for energy sources. In this study, a cellulase complex containing two cellulolytic enzymes, endoglucanase E (CelE) and β-glucosidase A (BglA), was established to completely degrade cellulose to glucose. The cellulases complexes were displayed on the cell surface of C, glutamicum by using the mechanosensitive channel (Msc) to anchor enzymes in the cytoplasmic membrane. As confirmed by comparison enzyme activities in the cell pellet fraction and supernatant and dual color based immunofluorescence microscopy, the cellulolytic enzymes was successfully associated with the cell surface of C. glutamicum. The displayed cellulases complexes had a synergic effect on the direct conversion of biomass to reducing sugars leading to 3.1- to 6.0-fold increase compared to the conversion by the secreted cellulases complexes. In addition, the displayed cellulases complexes increased the residual activities of cCelE and cBglA at 70 °C from 28.3% and 24.3% in the secreted form to 65.1% and 82.8%, respectively. The display of cellulases complexes on the cell surface of C glutamicum enhances the polysaccharide equivalent and the direct saccharification of low cost biomass via the action of multi-thermostable enzyme complexes.
机译:将纤维素酶引入谷氨酸棒状杆菌会导致木质纤维素失去材料作为能源的直接降解。在这项研究中,建立了包含两种纤维素分解酶,即内切葡聚糖酶E(CelE)和β-葡萄糖苷酶A(BglA)的纤维素酶复合物,以将纤维素完全降解为葡萄糖。通过使用机械敏感通道(Msc)将酶锚定在细胞质膜中,将纤维素酶复合物展示在谷氨酸棒杆菌的细胞表面上。通过比较在细胞沉淀级分和上清液中的酶活性以及基于双色的免疫荧光显微镜检查证实,纤维素分解酶成功地与谷氨酸棒状杆菌的细胞表面缔合。展示的纤维素酶复合物与生物质直接转化为还原糖具有协同作用,与分泌的纤维素酶复合物的转化相比,增加了3.1-6.0倍。另外,展示的纤维素酶复合物将70℃下的cCelE和cBglA的残留活性从分泌形式的28.3%和24.3%分别提高到65.1%和82.8%。谷氨酸棒杆菌细胞表面上纤维素酶复合物的展示通过多热酶复合物的作用增强了多糖当量和低成本生物质的直接糖化。

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