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Computational Analysis of C-Reactive Protein for Assessment of Molecular Dynamics and Interaction Properties

机译:C反应蛋白的计算分析,用于评估分子动力学和相互作用特性

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摘要

Serum C-reactive protein (CRP) is used as a marker of inflammation in several diseases including autoimmune disease and cardiovascular disease. CRP, a member of the pentraxin family, is comprised of five identical sub-units. CRP has diverse ligand-binding properties which depend upon different structural states of CRP. However, little is known about the molecular dynamics and interaction properties of CRP. In this study, we used SAPS, SCRATCH protein predictor, PDBsum, ConSurf, ProtScale, Drawhca, ASAView, SCide and SRide server and performed comprehensive analyses of molecular dynamics, protein-protein and residue-residue interactions of CRP. We used IGNH.pdb file for the crystal structure of human CRP which generated two pentamers (ABCDE and FGHIJ). The number of residues involved in residue-residue interactions between A-B, B-C, C-D, D-E, F-G, G-H, H-I, I-J, A-E and F-J subunits were 12, 11, 10, 11, 12, 11, 10, 11, 10 and 10, respectively. Fifteen antiparallel (3 sheets were involved in beta-sheet topology, and five (3 hairpins were involved in forming the secondary structure. Analysis of hydrophobic segment distribution revealed deviations in surface hydro-phobicity at different cavities present in CRP. Approximately 33 % of all residues were involved in the stabilization centers. We show that the bioinformatics tools can provide a rapid method to predict molecular dynamics and interaction properties of CRP. Our prediction of molecular dynamics and interaction properties of CRP combined with the modeling data based on the known 3D structure of CRP is helpful in designing stable forms of CRP mutants for structure-function studies of CRP and may facilitate in silico drug design for therapeutic targeting of CRP.
机译:血清C反应蛋白(CRP)在多种疾病(包括自身免疫性疾病和心血管疾病)中用作炎症的标志物。 CRP是pentraxin家族的成员,由五个相同的亚基组成。 CRP具有多种不同的配体结合特性,取决于CRP的不同结构状态。但是,关于CRP的分子动力学和相互作用特性知之甚少。在这项研究中,我们使用了SAPS,SCRATCH蛋白预测因子,PDBsum,ConSurf,ProtScale,Drawhca,ASAView,SCide和SRide服务器,并对CRP的分子动力学,蛋白质-蛋白质和残基-残基相互作用进行了综合分析。我们将IGNH.pdb文件用于人类CRP的晶体结构,该晶体生成了两个五聚体(ABCDE和FGHIJ)。 AB,BC,CD,DE,FG,GH,HI,IJ,AE和FJ亚基之间参与残基-残基相互作用的残基数为12、11、10、11、12、11、10、11、10和10。 15张反平行(3张涉及β-sheet拓扑结构,5张(3个发夹涉及形成二级结构。)疏水链段分布的分析显示,CRP中存在不同腔体时表面疏水性存在偏差。约占全部的33%研究表明,生物信息学工具可以为预测CRP的分子动力学和相互作用特性提供快速的方法,结合已知的3D结构,结合模型数据对CRP的分子动力学和相互作用特性进行预测CRP的研究有助于设计稳定形式的CRP突变体,用于CRP的结构功能研究,并且可能有助于计算机药物设计以治疗性靶向CRP。

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