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Conformational dynamics of amyloid-β (16–22) peptide in aqueous ionic liquids

机译:淀粉样蛋白-β(16-22)肽在水性离子液中的构象动态

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Molecular dynamics simulations of amyloid-β (16–22) peptide dimer in water as well as at two different experimentally studied concentrations of hydrated ionic liquids (ILs), ethylammonium mesylate (EAM), ethylammonium nitrate (EAN), and triethylammonium mesylate (TEAM), were carried out employing an umbrella sampling method. We used the average Ψ angle of the peptide backbone as the reaction coordinate to observe the conformational changes of a peptide dimer. Secondary structural element values were calculated for the peptide dimer along the reaction coordinate to see the transition of the peptide dimer between β-sheet and α-helix conformations. We observe the β-sheet conformation as the global minimum on the free energy surfaces in both EAM and EAN ILs at both the concentrations and at a low concentration of TEAM. However, we observe α-helix conformation as the global minimum at a high concentration of TEAM. Our results are in good correlation with the experimental findings. We calculated the average number of intramolecular and intermolecular hydrogen bonds of α-helix and β-sheet conformations in all solutions, and they are in correlation with the secondary structure element values. To understand the peptide–IL interactions, atom–atom radial distribution functions of cation, anion, and water around amide oxygen and hydrogen atoms were calculated. The solvent-accessible surface area of the peptide dimer was calculated to understand the exposure of the peptide towards the solvent during conformational changes. Finally, van der Waals (vdW) and Coulomb interaction energies were calculated between peptide–cation, peptide–anion, and peptide–water to understand the stability of conformations in different concentrations. We find that the TEA cation has more vdW interaction energy compared to Coulomb interaction energy with peptide in 70% (w/w) TEAM, which mimics a membrane-like environment to induce α-helix conformation rather than β-sheet conformation.
机译:水中淀粉样蛋白-β(16-22)肽二聚体的分子动力学模拟,以及两种不同的水合离子液体(ILS),甲基甲酸氨基铵(EAM),硝酸铵(EAN)和三乙基甲酸铵(团队)的两种不同的实验研究浓度),进行采用伞采样方法进行。我们使用肽骨干的平均ψ角作为反应坐标,观察肽二聚体的构象变化。沿反应坐标计算肽二聚体的二次结构元素值,以便看到β-片和α-螺旋构象之间的肽二聚体的转变。我们观察β-纸张构象作为在浓度和低浓度的团队中的EAM和IeN ILS中的自由能表面上的全局最小值。然而,我们观察α-螺旋构象作为全球最低的团队。我们的结果与实验结果良好相关。我们计算了所有溶液中α-螺旋和β-片状构象的分子内和分子间氢键的平均数量,它们与二级结构元素值相关。为了了解肽-IL相互作用,计算阳离子,阴离子和水周围的原子原子径向分布函数和酰胺氧和氢原子。计算肽二聚体的溶剂可接近的表面积,以在构象变化期间了解肽朝向溶剂的暴露。最后,在肽 - 阳离子,肽 - 阴离子和肽 - 水之间计算van der WaaS(VDW)和库仑相互作用能,以了解不同浓度的构象的稳定性。我们发现与肽在70%(w / w)团队中的库仑相互作用能量相比,茶阳离子具有更多VDW相互作用能量,其模仿类似膜状环境,以诱导α-螺旋构象而不是β-片状构象。

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