William G. Lowrie Department of Chemical and Biomolecular Engineering, Ohio State University, Columbus, OH, 43210, USA.
William G. Lowrie Department of Chemical and Biomolecular Engineering, Ohio State University, Columbus, OH, 43210, USA.
Protein Expr Purif. 2024 Dec;224:106578. doi: 10.1016/j.pep.2024.106578. Epub 2024 Aug 15.
Current biological research requires simple protein bioseparation methods capable of purifying target proteins in a single step with high yields and purities. Conventional affinity tag-based approaches require specific affinity resins and expensive proteolytic enzymes for tag removal. Purification strategies based on self-cleaving aggregating tags have been previously developed to address these problems. However, these methods often utilize C-terminal cleaving contiguous inteins which suffer from premature cleavage, resulting in significant product loss during protein expression. In this work, we evaluate two novel mutants of the Mtu RecA ΔI-CM mini-intein obtained through yeast surface display for improved protein purification. When used with the elastin-like-polypeptide (ELP) precipitation tag, the novel mutants - ΔI-12 and ΔI-29 resulted in significantly higher precursor content, product purity and process yield compared to the original Mtu RecA ΔI-CM mini-intein. Product purities ranging from 68 % to 94 % were obtained in a single step for three model proteins - green fluorescent protein (GFP), maltose binding protein (MBP) and beta-galactosidase (beta-gal). Further, high cleaving efficiency was achieved after 5 h under most conditions. Overall, we have developed improved self-cleaving precipitation tags which can be used for purifying a wide range of proteins cheaply at laboratory scale.
当前的生物学研究需要简单的蛋白质生物分离方法,这些方法能够在一步中以高产率和高纯度纯化目标蛋白质。传统的基于亲和标签的方法需要特定的亲和树脂和昂贵的蛋白酶来去除标签。以前已经开发了基于自切割聚集标签的纯化策略来解决这些问题。然而,这些方法通常利用 C 端切割连续的内含肽,这些内含肽容易过早切割,导致在蛋白质表达过程中损失大量产物。在这项工作中,我们通过酵母表面展示评估了两种新型的 Mtu RecA ΔI-CM 微型内含肽突变体,以提高蛋白质的纯化效率。当与弹性蛋白样多肽 (ELP) 沉淀标签一起使用时,新型突变体 ΔI-12 和 ΔI-29 与原始 Mtu RecA ΔI-CM 微型内含肽相比,前体含量、产物纯度和过程收率显著提高。对于三种模型蛋白 - 绿色荧光蛋白 (GFP)、麦芽糖结合蛋白 (MBP) 和 β-半乳糖苷酶 (β-gal),在一步中可获得 68%至 94%的产物纯度。此外,在大多数条件下,5 小时后可实现高切割效率。总体而言,我们已经开发出改进的自切割沉淀标签,可用于在实验室规模上廉价地纯化广泛的蛋白质。