Équipe Labellisée Ligue 2015, Department of Integrated Structural Biology, Institut de Génétique et de Biologie Moléculaire et Cellulaire (IGBMC), INSERM U1258/CNRS UMR 7104/Université de Strasbourg, 1 rue Laurent Fries, BP 10142, 67404, Illkirch, France.
ABT-Agarose Bead Technologies, C/La Forja, 9, Torrejón de Ardoz, 28850, Madrid, Spain.
Microb Cell Fact. 2018 Dec 1;17(1):191. doi: 10.1186/s12934-018-1039-z.
Bacterial expression and purification of recombinant proteins under homogeneous active form is often challenging. Fusion to highly soluble carrier proteins such as Maltose Binding Protein (MBP) often improves their folding and solubility, but self-association may still occur. For instance, HPV E6 oncoproteins, when produced as MBP-E6 fusions, are expressed as mixtures of biologically inactive oligomers and active monomers. While a protocol was previously developed to isolate MBP-E6 monomers for structural studies, it allows the purification of only one MBP-E6 construct at the time. Here, we explored a parallelizable strategy more adapted for biophysical assays aiming at comparing different E6 proteins.
In this study, we took advantage of the distinct size and diffusion properties of MBP-E6 monomers and oligomers to separate these two species using a rapid batch preparation protocol on affinity resins. We optimized resin reticulation, contact time and elution method in order to maximize the proportion of monomeric MBP-E6 in the final sample. Analytical size-exclusion chromatography was used to quantify the different protein species after purification. Thus, we developed a rapid, single-step protocol for the parallel purification of highly monomeric MBP-E6 samples. MBP-fused HPV16 E6 samples obtained by this approach were validated by testing the binding to their prototypical peptide targets (the LXXLL motif from ubiquitine ligase E6AP) by BIAcore-SPR assay.
We have designed a rapid single-step batch affinity purification approach to isolate biologically active monomers of MBP-fused E6 proteins. This protocol should be generalizable to isolate the monomer (or the minimal biologically active oligomer) of other proteins prone to self-association.
在均相活性形式下,细菌表达和纯化重组蛋白往往具有挑战性。与高度可溶性载体蛋白(如麦芽糖结合蛋白(MBP))融合通常可以改善其折叠和溶解度,但仍可能发生自组装。例如,HPV E6 癌蛋白作为 MBP-E6 融合蛋白表达时,会以无生物活性的寡聚物和有活性的单体混合物的形式表达。虽然以前已经开发了一种用于分离 MBP-E6 单体进行结构研究的方案,但它一次只能纯化一种 MBP-E6 构建体。在这里,我们探索了一种更适用于旨在比较不同 E6 蛋白的生物物理测定的可并行化策略。
在这项研究中,我们利用 MBP-E6 单体和寡聚物的不同大小和扩散特性,使用亲和树脂的快速批量制备方案来分离这两种物质。我们优化了树脂交联、接触时间和洗脱方法,以最大限度地提高最终样品中单体 MBP-E6 的比例。分析尺寸排阻色谱用于纯化后定量不同的蛋白质种类。因此,我们开发了一种快速、一步法的方案,用于平行纯化高度单体性的 MBP-E6 样品。通过这种方法获得的 MBP 融合 HPV16 E6 样品通过 BIAcore-SPR 测定来测试其与原型肽靶标(泛素连接酶 E6AP 的 LXXLL 基序)的结合来验证。
我们设计了一种快速的一步批量亲和纯化方法,用于分离 MBP 融合 E6 蛋白的有生物活性单体。该方案应可推广用于分离其他易自组装的蛋白质的单体(或最小的有生物活性的寡聚物)。