State Key Laboratory of Food Nutrition and Safety, College of Food Engineering and Biotechnology, Tianjin University of Science and Technology, 300457 Tianjin, China.
Analyst. 2020 May 7;145(9):3407-3413. doi: 10.1039/d0an00442a. Epub 2020 Apr 7.
A new core-shell structured nanomaterial based on FeO nanoparticles and 2,3-dialdehyde nanocrystalline cellulose (DAC) coating and its high efficiency in the preconcentration of glycoproteins were described in this work. DAC was obtained after the periodate oxidation of nanocrystalline cellulose to form aldehyde groups; then, FeO nanoparticles were coated with DAC, which were further attached to 4-aminophenylboronic acid (PBA) to form PBA-functionalized magnetic core-shell structured materials (FeO@DAC-PBA). The oxidation of cellulose and the production of sufficient amounts of aldehyde group sites were essential for the preparation of FeO@DAC-PBA used for the affinity adsorption of glycoproteins because the aldehyde groups on DAC allowed DAC to attach to the FeO nanoparticles and bind with PBA, which was active in forming a complex with the glyco sites in glycoproteins. Moreover, the preconcentration properties of FeO@DAC-PBA through PBA adsorption can be pH-triggered without the disassembly of the structures; thus, the developed FeO@DAC-PBA can be efficiently prepared to provide a promising affinity material for the affinity adsorption and purification of glycoproteins.
本文描述了一种基于 FeO 纳米粒子和 2,3-二醛纳米纤维素(DAC)涂层的新型核壳结构纳米材料,以及其在糖蛋白预浓缩方面的高效性。DAC 是通过纳米纤维素的高碘酸盐氧化形成醛基后得到的;然后,将 FeO 纳米粒子涂覆在 DAC 上,进一步与 4-氨基苯硼酸(PBA)结合,形成 PBA 功能化的磁性核壳结构材料(FeO@DAC-PBA)。纤维素的氧化和醛基位点的充分生成对于制备用于糖蛋白亲和吸附的 FeO@DAC-PBA 至关重要,因为 DAC 上的醛基允许 DAC 附着在 FeO 纳米粒子上,并与 PBA 结合,PBA 可与糖蛋白中的糖基位点形成复合物。此外,通过 PBA 吸附实现的 FeO@DAC-PBA 的预浓缩性能可以通过 pH 值触发,而无需结构的解体;因此,可高效制备开发的 FeO@DAC-PBA,为糖蛋白的亲和吸附和纯化提供一种很有前途的亲和材料。