Division of Pure and Applied Biochemistry, Department of Chemistry, Lund University, Box 124, 221 00 Lund, Sweden.
Division of Pure and Applied Biochemistry, Department of Chemistry, Lund University, Box 124, 221 00 Lund, Sweden.
Acta Biomater. 2019 Aug;94:447-458. doi: 10.1016/j.actbio.2019.04.056. Epub 2019 May 3.
We developed a modular approach for the preparation of nanoparticle-supported polymer brushes carrying repeating iminodiacetate units for affinity separation of histidine-tagged recombinant proteins. The nanoparticle-supported polymer brushes were prepared via the combination of surface-initiated atom transfer radical polymerization with Cu(I)-catalyzed azide-alkyne cycloaddition reaction. The nanocomposite materials were characterized to determine the particle size, morphology, organic content, densities of polymer chains and the affinity ligand. Protein binding assay illustrated that the iminodiacetate-rich polymer brushes enable to selectively bind histidine-tagged recombinant proteins in the presence of abundant interfering proteins. More importantly, the protein binding capacity can be tuned by adjusting the environmental temperature. STATEMENT OF SIGNIFICANCE: The nanoparticle core-polymer brush structure enables selective binding of histidine-tagged recombinant proteins via multiple metal-coordination interactions. The soft and flexible structure of the polymer brushes was found beneficial for lowering the steric hindrance in protein binding. Taking advantage of the conformational changes of the polymer brushes at different temperatures, it is possible to modulate the protein binding on the nanocomposite by adjusting the environmental temperature. In general, the iminodiacetate-rich core-brush nano adsorbents are attractive for purifying histidine-tagged recombinant proteins practically. The synthetic approach reported here may be expanded to develop other advanced functional materials for applications in various biomedical fields ranging from biosensors to drug delivery.
我们开发了一种模块化方法,用于制备带有重复亚氨二乙酸单元的纳米粒子负载聚合物刷,用于亲和分离组氨酸标记的重组蛋白。纳米粒子负载的聚合物刷是通过表面引发原子转移自由基聚合与 Cu(I) 催化的叠氮-炔环加成反应相结合制备的。对纳米复合材料进行了表征,以确定粒径、形态、有机含量、聚合物链密度和亲和配体。蛋白质结合实验表明,在存在大量干扰蛋白的情况下,富含亚氨二乙酸的聚合物刷能够选择性地结合组氨酸标记的重组蛋白。更重要的是,通过调节环境温度可以调节蛋白质的结合能力。
纳米粒子核-聚合物刷结构通过多种金属配位相互作用实现对组氨酸标记的重组蛋白的选择性结合。聚合物刷的柔软灵活结构被发现有利于降低蛋白质结合中的空间位阻。利用聚合物刷在不同温度下的构象变化,可以通过调节环境温度来调节纳米复合材料上的蛋白质结合。总的来说,富含亚氨二乙酸的核-刷纳米吸附剂在实际中非常适合纯化组氨酸标记的重组蛋白。这里报道的合成方法可以扩展到开发其他先进的功能材料,用于从生物传感器到药物输送等各种生物医学领域的应用。