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基于离子液体的双水相体系由分子内和分子间氢键诱导。

Ionic-Liquid-Based Aqueous Two-Phase Systems Induced by Intra- and Intermolecular Hydrogen Bonds.

机构信息

Key Laboratory of Colloid and Interface Chemistry, Shandong University, Ministry of Education, Jinan 250100, China.

Key Laboratory of Ministry of Education for Advanced Materials in Tropical Island Resources, Hainan University, No 58 Renmin Avenue, Haikou 570228, China.

出版信息

Molecules. 2022 Aug 19;27(16):5307. doi: 10.3390/molecules27165307.

Abstract

In recent years, aqueous two-phase systems (ATPSs) have been widely used in different fields and have become an increasingly attractive subject due to their application in the separation and purification of biomolecules. In this work, the aqueous phase behavior of ionic liquids (ILs) was modulated by changing the - structure of the anion in ILs. With the same tetra-butyl-phosphine as the cation, the cis-anion exhibited upper critical solution temperature (UCST) phenomena. In contrast, the -anion exhibited lower critical solution temperature (LCST) phenomena. The proposed mechanism shows that the main factors responsible for these phenomena include variations in the dissociation degree with temperature and the steric hindrance of the ILs. This phase behavior combines the chemical equilibrium in a solution with the microstructure of the molecule and is useful for constructing new chemical dynamic equilibria in ATPS. As an example of its application, aqueous solutions of both ILs can be used for the efficient separation and extraction of specific amino acids. The two ATPS systems reported in this work highlight a simple, effective, and environmentally friendly method for separating small biological molecules.

摘要

近年来,双水相体系(ATPS)由于在生物分子的分离和纯化方面的应用而受到越来越多的关注,已被广泛应用于不同领域。在这项工作中,通过改变离子液体(ILs)中的阴离子结构来调节其水相行为。采用相同的四丁基膦作为阳离子,顺式阴离子表现出上临界溶解温度(UCST)现象。相比之下,反式阴离子表现出下临界溶解温度(LCST)现象。所提出的机制表明,导致这些现象的主要因素包括温度变化时的离解度变化和 ILs 的空间位阻。这种相行为将溶液中的化学平衡与分子的微观结构结合在一起,有助于在 ATPS 中构建新的化学动态平衡。作为其应用的一个例子,两种 ILs 的水溶液可用于特定氨基酸的高效分离和提取。本工作中报道的两个 ATPS 体系突出了一种简单、有效、环保的分离小分子生物分子的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cf1b/9414173/22696e8fc750/molecules-27-05307-g001.jpg

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