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通过等电聚焦-凝胶化过程将位点特异性蛋白质固定在微流控芯片通道中。

Site-specific protein immobilization in a microfluidic chip channel via an IEF-gelation process.

作者信息

Shi Mianhong, Peng Youyuan, Yu Shaoning, Liu Baohong, Kong Jilie

机构信息

Department of Chemistry, Fudan University, Shanghai, PR China.

出版信息

Electrophoresis. 2007 May;28(10):1587-94. doi: 10.1002/elps.200600569.

DOI:10.1002/elps.200600569
PMID:17447236
Abstract

A novel strategy for site-specific protein immobilization via combining chip IEF with low-temperature sol-gel technology, called IEF-GEL here, in the channel of a modified poly(methyl methacrylate) (PMMA) microfluidic chip is proposed in this work. The IEF-GEL process involves firstly IEF for homogeneously dissolved protein in PBS containing alumina sol and carrier ampholyte with prearranged pH gradient, and then gelation locally for protein encapsulation. The process and feasibility of proposed IEF-GEL were investigated by EOF measurements, fluorescence microscopic photography, Raman spectrum and further demonstrated by glucose oxidase (GOx) reactors integrated with end-column electrochemical detection. Site-controllable immobilization of protein was realized in a 30 mm long microfluidic chip channel by the strategy to create a approximately 1.7 mm concentrated FITC-BSA band, which leads to great improvement of the elute peak shape, accomplished with remarkably increased sensitivity, approximately 20 times higher than that without IEF-GEL treatment to GOx reactors. The kinetic response of GOx after IEF-GEL treatment was also investigated. The proposed system holds the advantages of IEF and low-temperature sol-gel technologies, i.e. concentrating the protein to be focused and retaining the biological activity for the gel-embedded protein, thus realizes site-specific immobilization of low-concentration protein at nL volume level.

摘要

本文提出了一种将芯片等电聚焦(IEF)与低温溶胶-凝胶技术相结合的位点特异性蛋白质固定化新策略,在本文中称为IEF-GEL,该策略应用于改性聚甲基丙烯酸甲酯(PMMA)微流控芯片通道中。IEF-GEL过程首先是在含有氧化铝溶胶和载体两性电解质且具有预先设定pH梯度的磷酸盐缓冲液(PBS)中对均匀溶解的蛋白质进行IEF,然后局部凝胶化以封装蛋白质。通过电渗流(EOF)测量、荧光显微镜摄影、拉曼光谱研究了所提出的IEF-GEL的过程和可行性,并通过集成柱端电化学检测的葡萄糖氧化酶(GOx)反应器进一步进行了验证。通过该策略在30 mm长的微流控芯片通道中实现了蛋白质的位点可控固定化,形成了一条约1.7 mm的浓缩异硫氰酸荧光素标记牛血清白蛋白(FITC-BSA)带,这极大地改善了洗脱峰形状,显著提高了灵敏度,比未经IEF-GEL处理的GOx反应器高出约20倍。还研究了IEF-GEL处理后GOx的动力学响应。所提出的系统具有IEF和低温溶胶-凝胶技术的优点,即将待聚焦的蛋白质浓缩并保持凝胶包埋蛋白质的生物活性,从而在纳升体积水平上实现低浓度蛋白质的位点特异性固定化。

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