Department of Microbiology, Dr. Harisingh Gour Vishwavidyalaya (A Central University), Sagar, Madhya Pradesh, India.
Central Ayurveda Research Institute, Jhansi, Uttar Pradesh, India.
PLoS One. 2022 Sep 16;17(9):e0268333. doi: 10.1371/journal.pone.0268333. eCollection 2022.
Fungal β-mannanases hydrolyze β-1, 4-glycosidic bonds of mannans and find application in the generation of mannose and prebiotic mannooligosaccharides (MOS). Previously, a MOS generating β-mannanase from Aspergillus oryzae MTCC 1846 (βManAo) was characterized and its structural and functional properties were unraveled through homology modeling and molecular dynamics in this study. The βManAo model was validated with 92.9% and 6.5% of the residues found to be distributed in the most favorable and allowed regions of the Ramachandran plot. Glu244 was found to play a key role in the interaction with mannotriose, indicating conserved amino acids for the catalytic reaction. A detailed metadynamic analysis of the principal components revealed the presence of an α8-helix in the C-terminus which was very flexible in nature and energy landscapes suggested high conformation sub-states and the complex dynamic behavior of the protein. The binding of the M3 substrate stabilized the β-mannanase and resulted in a reduction in the intermediate conformational sub-states evident from the free energy landscapes. The active site of the β-mannanase is mostly hydrophilic in nature which is accordance with our results, where the major contribution in the binding energy of the substrate with the active site is from electrostatic interactions. Define Secondary Structure of Proteins (DSSP) analysis revealed a major transition of the protein from helix to β-turn for binding with the mannotriose. The molecular dynamics of the βManAo-mannotriose model, and the role and interactions of catalytic residues with ligand were also described. The substrate binding pocket of βManAo was found to be highly dynamic and showed large, concerted movements. The outcomes of the present study can be exploited in further understanding the structural properties and functional dynamics of βManAo.
真菌 β-甘露聚糖酶水解甘露聚糖中的β-1,4-糖苷键,在甘露糖和益生元甘露寡糖(MOS)的生成中得到应用。本研究中,通过同源建模和分子动力学,对先前从米曲霉 MTCC 1846 中分离出的一种生成 MOS 的 β-甘露聚糖酶(βManAo)进行了表征,揭示了其结构和功能特性。βManAo 模型的验证结果显示,92.9%和 6.5%的残基分别分布在 Ramachandran 图谱的最有利和允许区域。发现Glu244 在与甘露三糖的相互作用中起着关键作用,表明催化反应中存在保守的氨基酸。主成分的详细元动力学分析表明,C 端存在一个α8-螺旋,其性质非常灵活,能量景观表明蛋白质具有高构象亚态和复杂的动态行为。M3 底物的结合稳定了β-甘露聚糖酶,并导致中间构象亚态的减少,这从自由能景观中可以明显看出。β-甘露聚糖酶的活性位点本质上大多是亲水的,这与我们的结果一致,即在底物与活性位点结合能中,主要贡献来自静电相互作用。定义蛋白质二级结构(DSSP)分析表明,蛋白质在与甘露三糖结合时,主要从螺旋转变为β-转角。还描述了βManAo-甘露三糖模型的分子动力学以及催化残基与配体的相互作用。发现βManAo 的底物结合口袋具有高度动态性,并显示出较大的协同运动。本研究的结果可用于进一步了解βManAo 的结构特性和功能动力学。