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基于增强采样方法的水合离子液体中丙氨酸二肽的构象自由能景观

Conformational Free-Energy Landscapes of Alanine Dipeptide in Hydrated Ionic Liquids from Enhanced Sampling Methods.

作者信息

Dasari Sathish, Mallik Bhabani S

机构信息

Department of Chemistry, Indian Institute of Technology Hyderabad, Kandi, Sangareddy 502285, Telangana, India.

出版信息

J Phys Chem B. 2020 Aug 6;124(31):6728-6737. doi: 10.1021/acs.jpcb.0c05629. Epub 2020 Jul 28.

Abstract

Understanding the interaction of the ionic liquid (IL) with protein is vital to find the origin of the conformational changes of proteins in these alternative solvents. Here, we performed biased molecular dynamics simulations of alanine dipeptide (ADP), a widely used model for protein backbone structure, in water and two hydrated ionic liquids (ILs): 80% (w/w) 1-ethyl-3-methylimidazolium acetate ([EMIm][Ac]) and 80% (w/w) choline dihydrogen phosphate ([Cho][DHP]). We employed three different biasing methods, metadynamics (metaD), well-tempered metadynamics (WT-metaD), and adaptive biasing force (ABF), to construct the free-energy landscapes of the ADP conformations using the backbone dihedral angles (ϕ and ψ) as the collective variables. The calculations were also performed in water; the free-energy landscapes of ADP in water obtained from three methods are similar and agree well with the previously reported results. In hydrated [EMIm][Ac], α-planar conformation emerges as a minimum, which is comparable to that of α and β conformations corresponding to α-helix and β-sheet-like conformations of proteins. Investigation of corresponding conformations suggests that the imidazolium ring of [EMIm] cation is stacked with the amide bonds of ADP. Acetate anion makes hydrogen bonds with the amide hydrogens of the ADP. The amide-π stacking interaction is the driving force for α-planar conformation to become one of the minimum energy conformations in this IL, which destabilizes the protein conformation. However, α and β conformations are more stable in hydrated [Cho][DHP] compared to α-planar and β-planar conformations; therefore, this IL stabilizes the protein conformation. These findings are in good correlation with the previous study of proteins in these ILs. Our study helps to understand the interaction of proteins with the ionic entities and their stability in ILs.

摘要

了解离子液体(IL)与蛋白质的相互作用对于探寻蛋白质在这些替代性溶剂中构象变化的根源至关重要。在此,我们对丙氨酸二肽(ADP,一种广泛用于蛋白质主链结构的模型)在水以及两种水合离子液体(ILs):80%(w/w)的1-乙基-3-甲基咪唑醋酸盐([EMIm][Ac])和80%(w/w)的磷酸二氢胆碱([Cho][DHP])中进行了有偏分子动力学模拟。我们采用了三种不同的有偏方法,即元动力学(metaD)、加权元动力学(WT-metaD)和自适应有偏力(ABF),以主链二面角(ϕ和ψ)作为集体变量来构建ADP构象的自由能景观。在水中也进行了计算;从三种方法获得的ADP在水中的自由能景观相似,且与先前报道的结果吻合良好。在水合[EMIm][Ac]中,α-平面构象作为一个极小值出现,这与对应于蛋白质α-螺旋和β-折叠样构象的α和β构象相当。对相应构象的研究表明,[EMIm]阳离子的咪唑环与ADP的酰胺键堆叠。醋酸根阴离子与ADP的酰胺氢形成氢键。酰胺-π堆叠相互作用是α-平面构象在这种离子液体中成为最低能量构象之一的驱动力,这会使蛋白质构象不稳定。然而,与α-平面和β-平面构象相比,α和β构象在水合[Cho][DHP]中更稳定;因此,这种离子液体使蛋白质构象稳定。这些发现与先前对蛋白质在这些离子液体中的研究高度相关。我们的研究有助于理解蛋白质与离子实体的相互作用及其在离子液体中的稳定性。

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