Molecular docking of thiamine reveals similarity in binding properties between the prion protein and other thiamine-binding proteins

被引:0
作者
Nataraj S. Pagadala
Trent C. Bjorndahl
Nikolay Blinov
Andriy Kovalenko
David S. Wishart
机构
[1] University of Alberta,Department of Electrical and Computer Engineering
[2] University of Alberta,Departments of Biological Sciences and Computing Science
[3] University of Alberta,Department of Mechanical Engineering
[4] National Institute for Nanotechnology,undefined
来源
Journal of Molecular Modeling | 2013年 / 19卷
关键词
Prion protein; Thiamine; Water interaction; Pi stacking;
D O I
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学科分类号
摘要
Prion-induced diseases are a global health concern. The lack of effective therapy and 100 % mortality rates for such diseases have made the prion protein an important target for drug discovery. Previous NMR experimental work revealed that thiamine and its derivatives bind the prion protein in a pocket near the N-terminal loop of helix 1, and conserved intermolecular interactions were noted between thiamine and other thiamine-binding proteins. Furthermore, water-mediated interactions were observed in all of the X-ray crystallographic structures of thiamine-binding proteins, but were not observed in the thiamine–prion NMR study. To better understand the potential role of water in thiamine–prion binding, a docking study was employed using structural X-ray solvent. Before energy minimization, docked thiamine assumed a “V” shape similar to some of the known thiamine-dependent proteins. Following minimization with NMR-derived restraints, the “F” conformation was observed. Our findings confirmed that water is involved in ligand stabilization and phosphate group interaction. The resulting refined structure of thiamine bound to the prion protein allowed the 4-aminopyrimidine ring of thiamine to π-stack with Tyr150, and facilitated hydrogen bonding between Asp147 and the amino group of 4-aminopyrimidine. Investigation of the π-stacking interaction through mutation of the tyrosine residue further revealed its importance in ligand placement. The resulting refined structure is in good agreement with previous experimental restraints, and is consistent with the pharmacophore model of thiamine-binding proteins.
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页码:5225 / 5235
页数:10
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