Synergistic recognition of transferrin by using performance dual epitope imprinted polymers

化学 分子印迹聚合物 表位 转铁蛋白 色谱法 组合化学 螯合作用 分子印迹 聚糖 吸附 丙烯酰胺 分子识别 生物化学 核化学 聚合物 选择性 单体 抗原 有机化学 糖蛋白 催化作用 生物 遗传学 分子
作者
Jia-Yuan He,Qing-Yao Li,Lili Yang,Rongrong Ma,Chong‐Zhi Wang,Lian‐Di Zhou,Qi‐Hui Zhang,Zhining Xia,Chun‐Su Yuan
出处
期刊:Analytica Chimica Acta [Elsevier]
卷期号:1186: 339117-339117 被引量:12
标识
DOI:10.1016/j.aca.2021.339117
摘要

Transferrin (Trf) is a new type of active drug targeting carrier and disease biomarker that regulates the balance of iron ions in human body. The recognition and isolation of Trf is of great significance for disease diagnosis and treatment. Thus, a new type of magnetic dual affinity epitope molecularly imprinted polymer coated on Fe3O4 nanoparticles (Fe3O4@DEMIP) was successfully prepared for specific recognition of Trf. C-terminal nonapeptide and Trf glycan were selected as bi-epitope templates for metal chelation and boron affinity immobilization, respectively. 4-vinylphenylboric acid (4-VP), N-isopropyl acrylamide (NIPAM) and zinc acrylic were used as functional monomers. Results showed that Fe3O4@DEMIP exhibited excellent specific recognition ability adsorption capacity toward Trf, with an adsorption of 43.96 mg g-1 (RSD = 3.28%) and a more satisfactory imprinting factor (about 6.60) than that of other reported imprinting methods. In addition, Fe3O4@DEMIP displayed pH, temperature and magnetic sensitivity properties to realize temperature and pH-controlled recognition and release of target proteins and magnetic rapid separation. Furthermore, the Fe3O4@DEMIP coupled with high-performance liquid chromatography (HPLC) analysis was successfully used for specific recognition of Trf in biosamples. This study provides a reliable protocol for preparing metal chelation and boron affinity dual affinity bi-epitope molecularly imprinted polymers for synergistic and efficient recognition of biomacromolecules in the complex biological systems.
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