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Processivity and enzymatic mechanism of a multifunctional family 5 endoglucanase from Bacillus subtilis BS-5 with potential applications in the saccharification of cellulosic substrates

机译:枯草芽孢杆菌BS-5的多功能5族内切葡聚糖酶的合成能力和酶促机理及其在纤维素底物糖化中的潜在应用

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BackgroundPresently, enzymes still constitute a major part of the cost of biofuel production from lignocellulosic biomass. Processive endoglucanases, which possess both endoglucanase and exoglucanase activity, have the potential to reduce the costs of biomass saccharification when used together with commercial cellulases. Therefore, the exploration of new processive endoglucanases has attracted much attention with a view to accelerating the industrialization of biofuels and biochemicals. ResultsThe endoglucanase EG5C and its truncated form EG5C-1 from Bacillus subtilis BS-5 were expressed and characterized. EG5C was a typical endoglucanase, comprised of a family 5 catalytic domain and family 3 carbohydrate-binding domain, and which had high activity toward soluble cellulosic substrates, but low activity toward insoluble cellulosic substrates. Importantly, the truncated form EG5C-1 was a processive endoglucanase that hydrolyzed not only carboxymethyl cellulose (CMC), but also insoluble cellulosic substrates. The hydrolytic activities of EG5C-1 towards CMC, phosphoric acid-swollen cellulose (PASC), p -nitrophenyl-β- d -cellobioside, filter paper and Avicel are 4170, 700, 2550, 405 and 320?U/μmol, respectively. These data demonstrated that EG5C-1 had higher activity ratio of exoglucanase to endoglucanase than other known processive endoglucanases. When PASC was degraded by EG5C-1, the ratio of soluble to insoluble reducing sugars was about 3.7 after 3?h of incubation with cellobiose and cellotriose as the main products. Importantly, EG5C-1 alone was able to hydrolyze filter paper and PASC. At 5% substrate concentration and 10 FPU/g PASC enzyme loading, the saccharification yield was 76.5% after 60?h of incubation. Replacement of a phenylalanine residue (F238) by an alanine at the entrance/exit of the substrate binding cleft significantly reduces the ability of EG5C-1 to degrade filter paper and Avicel, but this mutation has little impact on CMCase activity. The processivity of this mutant was also greatly reduced while its cellulose binding ability was markedly enhanced. ConclusionsThe processive endoglucanase EG5C-1 from B. subtilis BS-5 exhibits excellent properties that render it a suitable candidate for use in biofuel and biochemical production from lignocellulosic biomass. In addition, our studies also provide useful information for research on enzyme processivity at the molecular level.
机译:背景技术目前,酶仍构成木质纤维素生物质生产生物燃料成本的主要部分。具有内切葡聚糖酶和外切葡聚糖酶活性的加工性内切葡聚糖酶与商业纤维素酶一起使用时具有降低生物质糖化成本的潜力。因此,为了促进生物燃料和生物化学物质的工业化,新的进行性内切葡聚糖酶的探索引起了广泛的关注。结果表达并鉴定了枯草芽孢杆菌BS-5的内切葡聚糖酶EG5C及其截短形式EG5C-1。 EG5C是一种典型的内切葡聚糖酶,由5族催化域和3族碳水化合物结合域组成,对可溶性纤维素底物具有高活性,对不溶性纤维素底物具有低活性。重要的是,截短形式EG5C-1是一种进行性内切葡聚糖酶,它不仅水解羧甲基纤维素(CMC),而且还水解不溶性纤维素底物。 EG5C-1对CMC,磷酸溶胀的纤维素(PASC),对-硝基苯基-β-d-纤维二糖苷,滤纸和Avicel的水解活性分别为4170、700、2550、405和320?U /μmol。这些数据证明EG5C-1具有比其他已知的进行性内切葡聚糖酶更高的外切葡聚糖酶与内切葡聚糖酶的活性比。当PASC被EG5C-1降解时,以纤维二糖和纤维三糖为主要产物孵育3小时后,可溶性还原糖与不溶性还原糖之比约为3.7。重要的是,仅EG5C-1就能水解滤纸和PASC。在5%的底物浓度和10 FPU / g PASC的酶负载下,孵育60分钟后,糖化率为76.5%。在底物结合裂口的入口/出口用丙氨酸替代苯丙氨酸残基(F238)会大大降低EG5C-1降解滤纸和Avicel的能力,但这种突变对CMCase活性的影响很小。该突变体的生产力也大大降低,同时其纤维素结合能力显着增强。结论枯草芽孢杆菌BS-5的过程性内切葡聚糖酶EG5C-1具有优异的性能,使其成为木质纤维素生物质用于生物燃料和生化生产的合适候选者。此外,我们的研究还为在分子水平上研究酶的合成能力提供了有用的信息。

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