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Screening of mutations affecting protein stability and dynamics of FGFR1—A simulation analysis

机译:影响蛋白质稳定性和FGFR1动态的突变的筛选—模拟分析

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摘要

Single amino acid substitutions in Fibroblast Growth Factor Receptor 1 (FGFR1) destabilize protein and have been implicated in several genetic disorders like various forms of cancer, Kallamann syndrome, Pfeiffer syndrome, Jackson Weiss syndrome, etc. In order to gain functional insight into mutation caused by amino acid substitution to protein function and expression, special emphasis was laid on molecular dynamics simulation techniques in combination with in silico tools such as SIFT, PolyPhen 2.0, I-Mutant 3.0 and SNAP. It has been estimated that 68% nsSNPs were predicted to be deleterious by I-Mutant, slightly higher than SIFT (37%), PolyPhen 2.0 (61%) and SNAP (58%). From the observed results, P722S mutation was found to be most deleterious by comparing results of all in silico tools. By molecular dynamics approach, we have shown that P722S mutation leads to increase in flexibility, and deviated more from the native structure which was supported by the decrease in the number of hydrogen bonds. In addition, biophysical analysis revealed a clear insight of stability loss due to P722S mutation in FGFR1 protein. Majority of mutations predicted by these in silico tools were in good concordance with the experimental results.
机译:成纤维细胞生长因子受体1(FGFR1)中的单个氨基酸取代使蛋白质不稳定,并与多种遗传疾病有关,例如各种形式的癌症,卡拉曼综合征,菲佛综合征,杰克逊韦斯综合征等。通过氨基酸取代来实现蛋白质的功能和表达,特别强调了结合计算机模拟工具(例如SIFT,PolyPhen 2.0,I-Mutant 3.0和SNAP)的分子动力学模拟技术。据估计,I-Mutant预测有68%的nsSNP有害,略高于SIFT(37%),PolyPhen 2.0(61%)和SNAP(58%)。从观察到的结果中,通过比较所有计算机软件的结果,发现P722S突变最有害。通过分子动力学方法,我们已经表明,P722S突变导致柔性增加,并且更多地偏离天然结构,而天然结构受到氢键数量减少的支持。此外,生物物理分析揭示了由于FGFR1蛋白中的P722S突变而导致的稳定性丧失的清晰见解。这些计算机工具预测的大多数突变与实验结果高度吻合。

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