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具有聚乙烯亚胺辅助的多硼酸亲和结合位点的分级大孔琼脂糖材料,用于分离新霉素。

Hierarchical Macroporous Agarose Materials with Polyethyleneimine-Assisted Multiple Boronate Affinity Binding Sites for the Separation of Neomycin.

机构信息

College of Food Science & Engineering, Ocean University of China, Qingdao 266003, China.

Qingdao Institute of Marine Bioresources for Nutrition & Health Innovation, Qingdao 266109, China.

出版信息

J Agric Food Chem. 2023 Jul 26;71(29):11252-11262. doi: 10.1021/acs.jafc.3c01679. Epub 2023 Jul 1.

Abstract

Quantification of neomycin residues in food samples demands an efficient purification platform. Herein, hierarchical macroporous agarose monoliths with multiple boronate affinity sites were established for selective separation of neomycin. The silica core was synthesized by "one-step" Stöber procedures followed by modification with amino group and incorporation of polyethyleneimine. A versatile macroporous agarose monolith was prepared by emulsification strategies and functionalized with epoxy groups. After introducing polyethyleneimine-integrated silica nanoparticles onto the agarose monolith, fluorophenylboronic acids were immobilized. The physical and chemical characteristics of the composite monolith were analyzed systematically. After optimization, neomycin showed high binding ability of 23.69 mg/g, and the binding capacity can be manipulated by changing the pH and adding monosaccharides. The composite monolith was subsequently utilized to purify neomycin from the spiked model aquatic products followed by high-performance liquid chromatography analysis, which revealed a remarkable neomycin purification effect, indicating the great potential in the separation of neomycin from complicated aquatic products.

摘要

食品样品中庆大霉素残留的定量分析需要一个有效的纯化平台。在此,建立了具有多个硼酸亲和位点的分级大孔琼脂糖整体柱,用于庆大霉素的选择性分离。采用“一步法”Stöber 程序合成二氧化硅核,然后用氨基进行修饰,并掺入聚乙烯亚胺。通过乳化策略制备了多功能大孔琼脂糖整体柱,并将其官能化环氧基团。将聚乙烯亚胺-整合硅纳米粒子引入琼脂糖整体柱后,固定了芴基硼酸。系统分析了复合整体柱的物理化学性质。经过优化,庆大霉素表现出 23.69mg/g 的高结合能力,并且可以通过改变 pH 值和添加单糖来操纵结合能力。随后,将复合整体柱用于从加标模型水产品中纯化庆大霉素,然后进行高效液相色谱分析,结果表明庆大霉素具有显著的纯化效果,表明其在从复杂水产品中分离庆大霉素方面具有巨大的潜力。

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