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Molecular modeling and dynamics study of nonsynonymous SNP in bread wheat HSP16.9B gene

机译:面包小麦HSP16.9B基因中非唯一SNP的分子建模与动力学研究

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An ubiquitous molecular chaperon, small heat shock proteins (sHSP) maintain protein homeostasis under stress conditions. Single nucleotide polymorphism was predicted in HSP16.9B gene but so far its impact on protein structure has not been extensively studied. Keeping this point in mind, we applied computational methods and performed molecular dynamics simulation to examine the effect of aspartic acid substitution for asparagine at 11th position (D11N) in HSP16.9B. Furthermore, the secondary structural analysis revealed an addition of beta sheet before the mutation point in the mutant protein. Three dimensional protein structure modeling, validation of structures and molecular dynamics were performed to study the mechanism of the non-synonymous single nucleotide polymorphism on structural changes. The root mean square deviation (RMSD) result showed the stability of the mutated structure throughout simulations. Moreover, root mean square fluctuation (RMSF) of atoms and Hydrogen-bond patterns further supported our results.
机译:普遍存在的分子伴侣,小型热休克蛋白(SHSP)在胁迫条件下维持蛋白质稳态。在HSP16.9B基因中预测了单核苷酸多态性,但到目前为止它对蛋白质结构的影响尚未得到广泛研究。我们考虑到这一点,我们应用了计算方法并进行了分子动力学模拟,以检查Hsp16.9b中第11位(D11n)在第11位(D11n)中天冬氨酸的天冬氨酸替代物的影响。此外,二次结构分析显示在突变蛋白中突变点之前的β片添加。三维蛋白质结构建模,结构验证和分子动力学,研究了非同义单核苷酸多态性对结构变化的机制。根均方偏差(RMSD)结果表明,在整个模拟中突变结构的稳定性。此外,原子和氢键模式的根均方波动(RMSF)进一步支持我们的结果。

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