Improvement in the Reproducibility of a Paper-based Analytical Device (PAD) Using Stable Covalent Binding between Proteins and Cellulose Paper

被引:0
作者
Woogyeong Hong
Seong-Geun Jeong
Gyurak Shim
Dae Young Kim
Seung Pil Pack
Chang-Soo Lee
机构
[1] Chungnam National University,Department of Chemical Engineering and Applied Chemistry
[2] Osong Medical Innovation Foundation,New Drug Development Center
[3] Korea University,Department of Biotechnology and Bioinformatics
来源
Biotechnology and Bioprocess Engineering | 2018年 / 23卷
关键词
cellulose; immobilization; periodate oxidation; covalent binding; protein;
D O I
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中图分类号
学科分类号
摘要
Paper-based analytical devices (PADs) have been widely used in many fields because they are affordable and portable. For reproducible quantitative analysis, it is crucial to strongly immobilize proteins on PADs. Conventional techniques for immobilizing proteins on PADs are based on physical adsorption, but proteins can be easily removed by weak physical forces. Therefore, it is difficult to ensure the reproducibility of the analytical results of PADs using physical adsorption. To overcome this limitation, in this study, we showed a method of covalent binding of proteins to cellulose paper. This method consists of three steps, which include periodate oxidation of paper, the formation of a Schiff base, and reductive amination. We identified aldehyde and imine groups formed on paper using FT-IR analysis. This covalent bonding approach enhanced the binding force and binding capacity of proteins. We confirmed the activity of an immobilized antibody through a sandwich immunoassay. We expect that this immobilization method will contribute to the commercialization of PADs with high reproducibility and sensitivity.
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页码:686 / 692
页数:6
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