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二域 BlCel9A 酶在糖苷水解酶家族 9 中对纤维素解聚的分子机制。

Molecular mechanism of cellulose depolymerization by the two-domain BlCel9A enzyme from the glycoside hydrolase family 9.

机构信息

Brazilian Synchrotron Light Laboratory, Brazilian Center for Research in Energy and Materials, Giuseppe Maximo Scolfaro, 10000, Campinas, SP 13083-970, Brazil; Sao Carlos Institute of Physics, University of Sao Paulo, Av. Trabalhador Sao Carlense, 400, Sao Carlos, SP 13566-590, Brazil.

Sao Carlos Institute of Physics, University of Sao Paulo, Av. Trabalhador Sao Carlense, 400, Sao Carlos, SP 13566-590, Brazil.

出版信息

Carbohydr Polym. 2024 Apr 1;329:121739. doi: 10.1016/j.carbpol.2023.121739. Epub 2024 Jan 8.

Abstract

Carbohydrate-active enzymes from the glycoside hydrolase family 9 (GH9) play a key role in processing lignocellulosic biomass. Although the structural features of some GH9 enzymes are known, the molecular mechanisms that drive their interactions with cellulosic substrates remain unclear. To investigate the molecular mechanisms that the two-domain Bacillus licheniformis BlCel9A enzyme utilizes to depolymerize cellulosic substrates, we used a combination of biochemical assays, X-ray crystallography, small-angle X-ray scattering, and molecular dynamics simulations. The results reveal that BlCel9A breaks down cellulosic substrates, releasing cellobiose and glucose as the major products, but is highly inefficient in cleaving oligosaccharides shorter than cellotetraose. In addition, fungal lytic polysaccharide oxygenase (LPMO) TtLPMO9H enhances depolymerization of crystalline cellulose by BlCel9A, while exhibiting minimal impact on amorphous cellulose. The crystal structures of BlCel9A in both apo form and bound to cellotriose and cellohexaose were elucidated, unveiling the interactions of BlCel9A with the ligands and their contribution to substrate binding and products release. MD simulation analysis reveals that BlCel9A exhibits higher interdomain flexibility under acidic conditions, and SAXS experiments indicate that the enzyme flexibility is induced by pH and/or temperature. Our findings provide new insights into BlCel9A substrate specificity and binding, and synergy with the LPMOs.

摘要

碳水化合物活性酶家族 9(GH9)中的糖苷水解酶在木质纤维素生物质的加工中起着关键作用。尽管一些 GH9 酶的结构特征已经为人所知,但驱动它们与纤维素底物相互作用的分子机制仍不清楚。为了研究两域芽孢杆菌licheniformis BlCel9A 酶利用的分子机制来解聚纤维素底物,我们结合使用了生化分析、X 射线晶体学、小角 X 射线散射和分子动力学模拟。结果表明,BlCel9A 可分解纤维素底物,释放纤维二糖和葡萄糖作为主要产物,但对短于纤维四糖的寡糖的切割效率非常低。此外,真菌溶菌多糖氧化酶(LPMO)TtLPMO9H 增强了 BlCel9A 对结晶纤维素的解聚作用,而对无定形纤维素的影响最小。阐明了 BlCel9A 在无配体形式和与纤维三糖和纤维六糖结合形式下的晶体结构,揭示了 BlCel9A 与配体的相互作用及其对底物结合和产物释放的贡献。MD 模拟分析表明,BlCel9A 在酸性条件下表现出更高的结构域间灵活性,SAXS 实验表明,酶的灵活性是由 pH 值和/或温度诱导的。我们的发现为 BlCel9A 的底物特异性和结合以及与 LPMOs 的协同作用提供了新的见解。

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