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通过分子动力学模拟和酶活性测定研究螺旋和指尖突变对 xyn11A 热稳定性的影响。

Effects of helix and fingertip mutations on the thermostability of xyn11A investigated by molecular dynamics simulations and enzyme activity assays.

机构信息

a Theoretical and Computational Physics Group, Department of Physics, Faculty of Science , King Mongkut's University of Technology Thonburi (KMUTT) , 126 Pracha-Uthit Road, Bang Mod, Thrung Khru, Bangkok 10140 , Thailand.

b Theoretical and Computational Science Center (TaCS), Science Laboratory Building, Faculty of Science , King Mongkut's University of Technology Thonburi (KMUTT) , 126 Pracha-Uthit Road, Bang Mod, Thrung Khru, Bangkok 10140 , Thailand.

出版信息

J Biomol Struct Dyn. 2018 Nov;36(15):3978-3992. doi: 10.1080/07391102.2017.1404934. Epub 2017 Dec 4.

DOI:10.1080/07391102.2017.1404934
PMID:29129140
Abstract

Local conformational changes and global unfolding pathways of wildtype xyn11A recombinant and its mutated structures were studied through a series of atomistic molecular dynamics (MD) simulations, along with enzyme activity assays at three incubation temperatures to investigate the effects of mutations at three different sites to the thermostability. The first mutation was to replace an unstable negatively charged residue at a surface beta turn near the active site (D32G) by a hydrophobic residue. The second mutation was to create a disulphide bond (S100C/N147C) establishing a strong connection between an alpha helix and a distal beta hairpin associated with the thermally sensitive Thumb loop, and the third mutation add an extra hydrogen bond (A155S) to the same alpha helix. From the MD simulations performed, MM/PBSA energy calculations of the unfolding energy were in a good agreement with the enzyme activities measured from the experiment, as all mutated structures demonstrated the improved thermostability, especially the S100C/N147C proved to be the most stable mutant both by the simulations and the experiment. Local conformational analysis at the catalytic sites and the xylan access region also suggested that mutated xyn11A structures could accommodate xylan binding. However, the analysis of global unfolding pathways showed that structural disruptions at the beta sheet regions near the N-terminal were still imminent. These findings could provide the insight on the molecular mechanisms underlying the enhanced thermostability due to mutagenesis and changes in the protein unfolding pathways for further protein engineering of the GH11 family xylanase enzymes.

摘要

通过一系列原子分子动力学 (MD) 模拟,并在三个孵育温度下进行酶活性测定,研究了野生型 xyn11A 重组蛋白及其突变结构的局部构象变化和整体展开途径,以研究三个不同位置的突变对热稳定性的影响。第一个突变是用疏水性残基取代活性位点附近表面β转角中不稳定的带负电荷残基 (D32G)。第二个突变是在一个与热敏感拇指环相关的α螺旋和远端β发夹之间形成二硫键 (S100C/N147C),建立一个强连接。第三个突变是在相同的α螺旋上添加一个额外的氢键 (A155S)。从进行的 MD 模拟中,展开能的 MM/PBSA 能量计算与实验测量的酶活性非常吻合,因为所有突变结构都表现出了改善的热稳定性,特别是 S100C/N147C 无论是在模拟还是实验中都被证明是最稳定的突变体。催化部位和木聚糖进入区域的局部构象分析也表明,突变 xyn11A 结构可以容纳木聚糖结合。然而,整体展开途径的分析表明,N 端附近β片层区域的结构破坏仍然迫在眉睫。这些发现可以为突变和蛋白质展开途径变化导致 GH11 家族木聚糖酶增强热稳定性的分子机制提供深入了解,为进一步的蛋白质工程提供参考。

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