Department of Chemistry, School of Science, Tianjin University, Tianjin, China.
Key Laboratory of Functional Polymer Materials of Ministry of Education, Institute of Polymer Chemistry, College of Chemistry, Nankai University, Tianjin, China.
J Sep Sci. 2018 Feb;41(3):765-773. doi: 10.1002/jssc.201700939. Epub 2017 Dec 14.
Surface molecular imprinting over functionalized nanoparticles has proved to be an effective approach for construction of artificial nanomaterials for protein recognition. Herein, we report a strategy for synthesis of core-shell protein-imprinted nanoparticles by the functionalization of nano-cores with ionic liquids followed by aqueous precipitation polymerization to build thermo-responsive imprinted polymer nano-shells. The immobilized ionic liquids can form multiple interactions with the protein template. The polymerization process can produce thermo-reversible physical crosslinks, which are advantageous to enhancing imprinting and facilitating template removal. With bovine hemoglobin as a model template, the imprinted nanoparticles showed temperature-sensitivity in both dispersion behaviors and rebinding capacities. Compared with the ionic-liquid-modified core nanoparticles, the imprinted particles exhibited greatly increased selectivity and two orders of magnitude higher binding affinity for the template protein. The imprinted nanoparticles achieved relatively high imprinting factor up to 5.0 and specific rebinding capacity of 67.7 mg/g, respectively. These nanoparticles also demonstrated rapid rebinding kinetics and good reproducibility after five cycles of adsorption-regeneration. Therefore, the presented approach may be viable for the fabrication of high-performance protein-imprinted nanoparticles with temperature sensitivity.
表面分子印迹在功能化纳米粒子上已被证明是构建用于蛋白质识别的人工纳米材料的有效方法。在此,我们报告了一种通过离子液体功能化纳米核,然后进行水相沉淀聚合来构建温敏印迹聚合物纳米壳的核壳型蛋白质印迹纳米粒子的合成策略。固定化离子液体可以与蛋白质模板形成多种相互作用。聚合过程可以产生温敏性的可逆物理交联,有利于增强印迹和模板去除。以牛血红蛋白为模型模板,印迹纳米粒子在分散行为和再结合能力方面均表现出温度敏感性。与离子液体修饰的核纳米粒子相比,印迹颗粒对模板蛋白表现出大大提高的选择性和两个数量级的更高结合亲和力。印迹纳米粒子的印迹因子高达 5.0,比结合容量为 67.7mg/g。这些纳米粒子在经过五次吸附-再生循环后,也表现出快速的结合动力学和良好的重现性。因此,该方法可能适用于制备具有温度敏感性的高性能蛋白质印迹纳米粒子。