Department of Chemistry and Biochemistry, University of Notre Dame, Notre Dame, Indiana 46556, United States.
Department of Civil and Environmental Engineering and Earth Sciences, University of Notre Dame, Notre Dame, Indiana 46556, United States.
ACS Appl Mater Interfaces. 2021 Sep 22;13(37):44147-44156. doi: 10.1021/acsami.1c14670. Epub 2021 Sep 13.
Immobilization of proteins on magnetic nanoparticles (MNPs) is an effective approach to improve protein stability and facilitate separation of immobilized proteins for repeated use. Herein, we exploited the efficient SpyTag-SpyCatcher chemistry for conjugation of functional proteins onto MNPs and established a robust magnetic-responsive nanoparticle platform for protein immobilization. To maximize the loading capacity and achieve outstanding water dispersity, the SpyTag peptide was incorporated into the surface-charged polymers of MNPs, which provided abundant active sites for Spy chemistry while maintaining excellent colloidal stability in buffer solution. Conjugation between enhanced green fluorescence protein (EGFP)-SpyCatcher-fused proteins and SpyTag-functionalized MNPs was efficient at ambient conditions without adding enzymes or chemical cross-linkers. Benefiting from the excellent water dispersity and interface compatibility, the surface Spy reaction has fast kinetics, which is comparable to that of the solution Spy reaction. No activity loss was observed on EGFP after conjugation due to the site-selective nature of Spy chemistry. The immobilization process of EGFP on MNPs was highly specific and robust, which was not affected by the presence of other proteins and detergents, such as bovine serum albumin and Tween 20. The MNP platform was demonstrated to be protective to the conjugated EGFP and significantly improved the shelf life of immobilized proteins. In addition, experiments confirmed the retained magnetophoresis of the MNP after protein loading, demonstrating fast MNP recovery under an external magnetic field. This MNP is expected to provide a versatile and modular platform to achieve effective and specific immobilization of other functional proteins, enabling easy reuse and storage.
蛋白质固定在磁性纳米颗粒(MNPs)上是提高蛋白质稳定性和促进固定化蛋白质分离以重复使用的有效方法。在此,我们利用高效的 SpyTag-SpyCatcher 化学将功能蛋白偶联到 MNPs 上,并建立了一个稳健的磁响应纳米颗粒平台用于蛋白质固定化。为了最大限度地提高载物能力并实现出色的水分散性,SpyTag 肽被整合到 MNPs 的表面带电聚合物中,这为 Spy 化学提供了丰富的活性位点,同时在缓冲溶液中保持出色的胶体稳定性。在环境条件下,增强型绿色荧光蛋白(EGFP)-SpyCatcher 融合蛋白与 SpyTag 功能化的 MNPs 之间的偶联无需添加酶或化学交联剂即可高效进行。得益于出色的水分散性和界面相容性,表面 Spy 反应具有快速的动力学,与溶液 Spy 反应相当。由于 Spy 化学的位点选择性,偶联后 EGFP 没有观察到活性损失。EGFP 在 MNPs 上的固定化过程具有高度特异性和稳健性,不受其他蛋白质和洗涤剂(如牛血清白蛋白和吐温 20)的存在影响。该 MNP 平台被证明对共轭 EGFP 具有保护作用,并显著提高了固定化蛋白质的保质期。此外,实验证实了蛋白质负载后 MNP 仍保留磁泳,在外磁场下可快速回收 MNP。该 MNP 有望提供一种通用且模块化的平台,以实现其他功能蛋白的有效和特异性固定化,从而实现轻松重复使用和存储。