Hou Tongtong, Huang Yue, Wang Xin, Hu Xiaoling, Guan Ping
Department of Chemistry, School of Chemistry and Chemical Engineering, Northwestern Polytechnical University, Xi'an, 710072, PR China.
Department of Chemistry, School of Chemistry and Chemical Engineering, Northwestern Polytechnical University, Xi'an, 710072, PR China.
Talanta. 2023 Dec 1;265:124896. doi: 10.1016/j.talanta.2023.124896. Epub 2023 Jul 7.
The development of high-performance protein-imprinted materials remains challenging due to defects concerning high mass transfer resistance and non-specific binding, which are crucial for protein purification and enrichment. In this paper, lysozyme-imprinted mesoporous Zr-based MOF (mesoUiO-66-NH@MIPs) with specific and selective recognition of lysozyme (Lyz) were prepared by surface imprinting technology. In particular, the excellent hydrophilicity mesoporous MOFs (mesoUiO-66-NH) with a pore size of 10 nm was prepared as a carrier for Lyz immobilization by an auxiliary modulation strategy to regulate the microporous structure of UiO-66-NH with the propionic acid solution, enabling massive loading of the macromolecular protein Lyz. The mesoUiO-66-NH@MIPs reached a maximum saturation adsorption of 206.54 mg g on Lyz in 20 min at 25 °C with an imprinting factor of 2.57 and selection factors of 2.02, 2.34, and 2.45 for cytochrome c (Cyt c), bovine serum albumin (BSA) and bovine hemoglobin (BHb), respectively. More importantly, the mesoUiO-66-NH@MIPs could specifically recognize Lyz from the mixed protein system. The adsorption capacity of Lyz could still reach 78.55% after 5 cycles with good cyclic regeneration performance. This provides a new research option for developing and applying novel porous MOF in biomolecule imprinting technology and the specific separation of biomolecules.
由于存在传质阻力大及非特异性结合等缺陷,高性能蛋白质印迹材料的开发仍然具有挑战性,而这些缺陷对于蛋白质的纯化和富集至关重要。本文采用表面印迹技术制备了对溶菌酶(Lyz)具有特异性和选择性识别能力的溶菌酶印迹介孔锆基金属有机框架材料(mesoUiO - 66 - NH@MIPs)。具体而言,通过辅助调控策略,用丙酸溶液调节UiO - 66 - NH的微孔结构,制备出孔径为10 nm的具有优异亲水性的介孔金属有机框架材料(mesoUiO - 66 - NH)作为固定Lyz的载体,实现了大分子蛋白质Lyz的大量负载。mesoUiO - 66 - NH@MIPs在25℃下20分钟内对Lyz的最大饱和吸附量达到206.54 mg g,印迹因子为2.57,对细胞色素c(Cyt c)、牛血清白蛋白(BSA)和牛血红蛋白(BHb)的选择因子分别为2.02、2.34和2.45。更重要的是,mesoUiO - 66 - NH@MIPs能够从混合蛋白质体系中特异性识别Lyz。经过5次循环后,Lyz的吸附容量仍能达到78.55%,具有良好的循环再生性能。这为新型多孔金属有机框架材料在生物分子印迹技术及生物分子特异性分离中的开发和应用提供了新的研究选择。