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GBA2抑制剂对GH116 β-葡萄糖苷酶及其错义突变体的抑制作用的结构基础:晶体学和量子化学研究

Structural basis for inhibition of a GH116 β-glucosidase and its missense mutants by GBA2 inhibitors: Crystallographic and quantum chemical study.

作者信息

Meelua Wijitra, Thinkumrob Natechanok, Saparpakorn Patchreenart, Pengthaisong Salila, Hannongbua Supa, Ketudat Cairns James R, Jitonnom Jitrayut

机构信息

Demonstration School, University of Phayao, Phayao, 56000, Thailand; Unit of Excellence in Computational Molecular Science and Catalysis, and Division of Chemistry, School of Science, University of Phayao, Phayao, 56000, Thailand.

Unit of Excellence in Computational Molecular Science and Catalysis, and Division of Chemistry, School of Science, University of Phayao, Phayao, 56000, Thailand.

出版信息

Chem Biol Interact. 2023 Oct 1;384:110717. doi: 10.1016/j.cbi.2023.110717. Epub 2023 Sep 17.

Abstract

The crystal structure of the Thermoanaerobacterium xylanolyticum in glycoside hydrolase family 116 (TxGH116) β-glucosidase provides a structural model for human GBA2 glucosylceramidase, an enzyme defective in hereditary spastic paraplegia and a potential therapeutic target for treating Gaucher disease. To assess the therapeutic potential of known inhibitors, the X-ray structure of TxGH116 in complex with isofagomine (IFG) was determined at 2.0 Å resolution and showed the IFG bound in a relaxed chair conformation. The binding of IFG and 7 other iminosugar inhibitors to wild-type and mutant enzymes (Asp508His and Arg786His) mimicking GBA2 pathogenic variants was then evaluated computationally by two-layered ONIOM calculations (at the B3LYP:PM7 level). Calculations showed that six charged residues, Glu441, Asp452, His507, Asp593, Glu777, and Arg786 influence inhibitor binding most. His507, Glu777 and Arg786, form strong hydrogen bonds with the inhibitors (∼1.4-1.6 Å). Thus, the missense mutation of one of these residues in Arg786His has a greater effect on the interaction energies for all inhibitors compared to Asp508His. In line with the experimental data for the inhibitors that have been tested, the favorable interaction energy between the inhibitors and the TxGH116 protein followed the trend: isofagomine > 1-deoxynojirimycin > glucoimidazole > N-butyl-deoxynojirimycin ≈ N-nonyl-deoxynojirimycin > conduritol B epoxide ≈ azepane 1 > azepane 2. The obtained structural and energetic properties and comparison to the GBA2 model can lead to understanding of structural requirement for inhibitor binding in GH116 to aid the design of high potency GBA2 inhibitors.

摘要

嗜热栖热放线菌糖苷水解酶家族116(TxGH116)β-葡萄糖苷酶的晶体结构为人类GBA2葡糖神经酰胺酶提供了一个结构模型,该酶在遗传性痉挛性截瘫中存在缺陷,是治疗戈谢病的潜在治疗靶点。为了评估已知抑制剂的治疗潜力,以2.0 Å分辨率测定了TxGH116与异麦角胺(IFG)复合物的X射线结构,结果显示IFG以松弛椅式构象结合。然后通过双层ONIOM计算(在B3LYP:PM7水平)对IFG和其他7种亚氨基糖抑制剂与模拟GBA2致病变体的野生型和突变型酶(Asp508His和Arg786His)的结合进行了计算评估。计算结果表明,六个带电荷的残基Glu441、Asp452、His507、Asp593、Glu777和Arg786对抑制剂结合的影响最大。His507、Glu777和Arg786与抑制剂形成强氢键(~1.4 - 1.6 Å)。因此,与Asp508His相比,Arg786His中这些残基之一的错义突变对所有抑制剂的相互作用能影响更大。与已测试抑制剂的实验数据一致,抑制剂与TxGH116蛋白之间的有利相互作用能遵循以下趋势:异麦角胺>1-脱氧野尻霉素>葡糖咪唑>N-丁基-脱氧野尻霉素≈N-壬基-脱氧野尻霉素>昆布醇B环氧化物≈氮杂环庚烷1>氮杂环庚烷2。所获得的结构和能量性质以及与GBA2模型的比较有助于理解GH116中抑制剂结合的结构要求,以辅助设计高效的GBA2抑制剂。

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