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首页> 外文期刊>Journal of Materials Chemistry, B. materials for biology and medicine >A combination of distillation-precipitation polymerization and click chemistry: fabrication of boronic acid functionalized Fe3O4 hybrid composites for enrichment of glycoproteins
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A combination of distillation-precipitation polymerization and click chemistry: fabrication of boronic acid functionalized Fe3O4 hybrid composites for enrichment of glycoproteins

机译:蒸馏-沉淀聚合和点击化学的结合:硼酸官能化的Fe3O4杂化复合材料的制备,以富集糖蛋白

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摘要

Biomedical sciences, and in particular biomarker research, demand efficient glycoprotein enrichment platforms. In this paper, a facile and efficient approach combining distillation-precipitation polymerization (DPP) and click chemistry was developed to synthesize boronic acid ligand-modified magnetic nanoparticles for the enrichment of glycoproteins. Due to the relatively large amount of benzyl chloride groups introduced by DPP on the magnetic core, which easily can be transferred into azide groups, the alkyne-phenylboronic acid ligands were immobilized onto the surface of Fe3O4 with high efficiency via the Cu(I)-catalyzed azide-alkyne cycloaddition (CuAAC) 'click' reaction. The morphology, structure and composition of the resulting core-shell Fe3O4@pory(4-vinylbenylchloride) @amidophenylboronic acid (Fe3O4@pVBC@APBA) nanocomposites were characterized by transmission electron microscopy. X-ray powder diffraction, vibrating sample magnetometry, Fourier transform infrared spectroscopy, thermogravimetric analysis and X-ray photoelectron spectrometry. The Fe3O4@pVBC@APBA microspheres held a ~50 nrn polymeric shell, and exhibited high magnetic response to an external magnetic field. The binding results demonstrated that Fe3O4@pVBC@APBA possessed high adsorption capacity and remarkable selectivity to glycoproteins. Moreover, the glycoproteins in the egg white sample could be enriched under physiological conditions (pH 7.4) as well, due to the lower pK_a value of the alkyne-phenylboronic acid ligand. The high stability and selectivity of Fe3O4@pVBC@APBA for the glycoproteins were retained over several separation cycles. This boronate affinity material has potential applications in biomedical and biotechnological fields including drug delivery and biosensing.
机译:生物医学科学,尤其是生物标志物研究,需要高效的糖蛋白富集平台。在本文中,开发了一种结合蒸馏-沉淀聚合(DPP)和点击化学的简便有效的方法来合成硼酸配体修饰的磁性纳米粒子,以富集糖蛋白。由于DPP在磁芯上引入了相对大量的苄基氯基团,这些苄基氯基团很容易转移成叠氮基团,因此炔烃-苯基硼酸配体通过Cu(I)-高效地固定在Fe3O4的表面上。催化的叠氮化物-炔烃环加成(CuAAC)'点击'反应。通过透射电镜对得到的核-壳型Fe3O4 @多孔(4-乙烯基苯氯)@酰胺基苯基硼酸(Fe3O4 @ pVBC @ APBA)纳米复合材料的形貌,结构和组成进行了表征。 X射线粉末衍射,振动样品磁力分析,傅立叶变换红外光谱,热重分析和X射线光电子能谱。 Fe3O4 @ pVBC @ APBA微球具有约50 nrn的聚合物壳,对外部磁场表现出较高的磁响应。结合结果表明Fe3O4 @ pVBC @ APBA具有高吸附能力和对糖蛋白的显着选择性。而且,由于炔烃-苯基硼酸配体的pK_a值较低,蛋清样品中的糖蛋白也可以在生理条件(pH 7.4)下富集。 Fe3O4 @ pVBC @ APBA对糖蛋白的高稳定性和选择性在多个分离循环中得以保留。这种硼酸酯亲和材料在生物医学和生物技术领域具有潜在的应用,包括药物输送和生物传感。

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