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纤维素性质对细菌 GH48 酶酶解的影响:来自具有行进性的地衣芽孢杆菌 Cel48B 纤维素酶的结构和机制见解。

Impact of cellulose properties on enzymatic degradation by bacterial GH48 enzymes: Structural and mechanistic insights from processive Bacillus licheniformis Cel48B cellulase.

机构信息

São Carlos Institute of Physics, University of São Paulo (USP), São Carlos 13560-970, São Paulo, Brazil; Brazilian Synchrotron Light Laboratory (LNLS), Brazilian Center for Research in Energy and Materials, Campinas 13083-970, São Paulo, Brazil.

Institute of Chemistry and Center for Computer in Engineering and Sciences, University of Campinas (UNICAMP), Campinas 13084-862, São Paulo, Brazil.

出版信息

Carbohydr Polym. 2021 Jul 15;264:118059. doi: 10.1016/j.carbpol.2021.118059. Epub 2021 Apr 9.

Abstract

Processive cellulases are highly efficient molecular engines involved in the cellulose breakdown process. However, the mechanism that processive bacterial enzymes utilize to recruit and retain cellulose strands in the catalytic site remains poorly understood. Here, integrated enzymatic assays, protein crystallography and computational approaches were combined to study the enzymatic properties of the processive BlCel48B cellulase from Bacillus licheniformis. Hydrolytic efficiency, substrate binding affinity, cleavage patterns, and the apparent processivity of bacterial BlCel48B are significantly impacted by the cellulose size and its surface morphology. BlCel48B crystallographic structure was solved with ligands spanning -5 to -2 and +1 to +2 subsites. Statistical coupling analysis and molecular dynamics show that co-evolved residues on active site are critical for stabilizing ligands in the catalytic tunnel. Our results provide mechanistic insights into BlCel48B molecular-level determinants of activity, substrate binding, and processivity on insoluble cellulose, thus shedding light on structure-activity correlations of GH48 family members in general.

摘要

具有延伸能力的纤维素酶是参与纤维素分解过程的高效分子引擎。然而,对于具有延伸能力的细菌酶利用何种机制来招募和保留催化部位的纤维素链,人们仍知之甚少。在这里,我们将酶学分析、蛋白质晶体学和计算方法相结合,以研究来自地衣芽孢杆菌的具有延伸能力的 BlCel48B 纤维素酶的酶学特性。水解效率、底物结合亲和力、切割模式以及细菌 BlCel48B 的表观延伸能力都受到纤维素大小及其表面形态的显著影响。我们解析了结合了从 -5 到 -2 以及 +1 到 +2 糖苷位配体的 BlCel48B 晶体结构。统计耦合分析和分子动力学表明,活性部位上共同进化的残基对于稳定催化隧道中的配体至关重要。我们的研究结果为 BlCel48B 在不溶性纤维素上的活性、底物结合和延伸能力的分子水平决定因素提供了机制见解,从而揭示了 GH48 家族成员的结构-活性相关性。

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