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β-乳球蛋白与表面活性离子液体在水溶液中的络合行为:实验和计算方法。

Complexation Behavior of β-Lactoglobulin with Surface Active Ionic Liquids in Aqueous Solutions: An Experimental and Computational Approach.

机构信息

Department of Chemistry, UGC-Centre for Advance Studies-II , Guru Nanak Dev University , Amritsar 143005 , India.

Department of Earth Resources Engineering, Faculty of Engineering , Kyushu University , Fukuoka 819-0395 , Japan.

出版信息

J Phys Chem B. 2019 Mar 7;123(9):2169-2181. doi: 10.1021/acs.jpcb.8b11610. Epub 2019 Feb 25.

Abstract

The nature of functionalization of alkyl chains of imidazolium-based surface active ionic liquids (SAILs) with amide or ester moiety led to contrasting complexation behavior toward the globular protein, bovine serum albumin. This prompted us to further investigate the SAIL-dependent colloidal behavior of another globular protein, β-lactoglobulin (βLG), to probe the origin of varying structural transformations in globular proteins induced by SAILs. Herein, we investigated the colloidal systems of βLG, rich in β-sheet structure, in the presence of four structurally different SAILs using a multitechnique approach. The complexation behavior, both at the air-solution interface and in bulk, is supplemented by different techniques. Docking studies have complemented the obtained experimental results. The specificity of structure, H-bonding ability of SAILs, and inherent structure of protein are found to govern their complexation behavior in terms of size, shape, and polarity of protein-SAIL complexes along with varying degrees of structural alterations in globular proteins. The present work is expected to be very useful in establishing a deep understanding of the structure-property relationship between the nature of proteins and SAILs for their complexation and colloidal behavior for various biomedical applications.

摘要

具有酰胺或酯部分的咪唑鎓基表面活性离子液体 (SAIL) 的烷基链的功能化性质导致其对球状蛋白质牛血清白蛋白的络合行为截然不同。这促使我们进一步研究另一种球状蛋白质β-乳球蛋白 (βLG) 的 SAIL 依赖性胶态行为,以探究 SAIL 诱导球状蛋白质结构变化的起源。在此,我们使用多种技术手段研究了富含β-折叠结构的βLG 在四种结构不同的 SAIL 存在下的胶体体系。通过不同的技术补充了络合行为,包括在空气-溶液界面和本体中的络合行为。对接研究补充了获得的实验结果。发现 SAIL 的结构特异性、氢键能力和蛋白质的固有结构控制了它们在蛋白质-SAIL 复合物的大小、形状和极性方面的络合行为,以及球状蛋白质的结构变化程度。这项工作有望非常有助于深入了解蛋白质和 SAIL 之间的结构-性质关系,以便在各种生物医学应用中对它们的络合和胶体行为进行研究。

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