通过形成蛋白质-聚合物表面活性剂纳米结构来增溶和稳定无水离子液体中的蛋白质。

Solubilizing and Stabilizing Proteins in Anhydrous Ionic Liquids through Formation of Protein-Polymer Surfactant Nanoconstructs.

机构信息

Department of Chemical Engineering, Imperial College , London SW7 2AZ , United Kingdom.

出版信息

J Am Chem Soc. 2016 Apr 6;138(13):4494-501. doi: 10.1021/jacs.5b13425. Epub 2016 Mar 25.

Abstract

Nonaqueous biocatalysis is rapidly becoming a desirable tool for chemical and fuel synthesis in both the laboratory and industry. Similarly, ionic liquids are increasingly popular anhydrous reaction media for a number of industrial processes. Consequently, the use of enzymes in ionic liquids as efficient, environment-friendly, commercial biocatalysts is highly attractive. However, issues surrounding the poor solubility and low stability of enzymes in truly anhydrous media remain a significant challenge. Here, we demonstrate for the first time that engineering the surface of a protein to yield protein-polymer surfactant nanoconstructs allows for dissolution of dry protein into dry ionic liquids. Using myoglobin as a model protein, we show that this method can deliver protein molecules with near native structure into both hydrophilic and hydrophobic anhydrous ionic liquids. Remarkably, using temperature-dependent synchrotron radiation circular dichroism spectroscopy to measure half-denaturation temperatures, our results show that protein stability increases by 55 °C in the ionic liquid as compared to aqueous solution, pushing the solution thermal denaturation beyond the boiling point of water. Therefore, the work presented herein could provide a platform for the realization of biocatalysis at high temperatures or in anhydrous solvent systems.

摘要

非水相生物催化技术在实验室和工业领域的化学和燃料合成中迅速成为一种理想的工具。同样,离子液体作为许多工业过程的无水反应介质也越来越受欢迎。因此,在离子液体中使用酶作为高效、环保的商业生物催化剂具有很高的吸引力。然而,酶在真正无水介质中溶解度差和稳定性低的问题仍然是一个重大挑战。在这里,我们首次证明,通过对蛋白质表面进行工程设计,生成蛋白质-聚合物表面活性剂纳米结构,可以将干燥的蛋白质溶解在干燥的离子液体中。我们使用肌红蛋白作为模型蛋白,证明了这种方法可以将具有近乎天然结构的蛋白分子递送到亲水性和疏水性无水离子液体中。值得注意的是,我们使用温度依赖的同步辐射圆二色性光谱来测量半变性温度,结果表明,与水溶液相比,蛋白在离子液体中的稳定性提高了 55°C,将溶液热变性推至水的沸点以上。因此,本文所介绍的工作可以为在高温或无水溶剂体系中实现生物催化提供一个平台。

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