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基于微流控反射干涉光谱法的传感技术用于探索蛋白质-蛋白质相互作用条件。

Microfluidic reflectometric interference spectroscopy-based sensing for exploration of protein-protein interaction conditions.

机构信息

Graduate School of Engineering, Kobe University, Kobe 657-8501, Japan.

出版信息

Biosens Bioelectron. 2013 Feb 15;40(1):247-51. doi: 10.1016/j.bios.2012.07.032. Epub 2012 Aug 22.

Abstract

A microfluidic reflectometric interference spectroscopy (RIfS) system was adopted for the investigation of protein-protein interaction (PPI). The influence of reaction conditions (pH and temperature) on the antigen-antibody reaction of alpha-fetoprotein (AFP) and its monoclonal antibody (anti-AFP) as a model of PPI was investigated in real time with a label-free fusion, where anti-AFP was covalently immobilized on the carboxylated silicon nitride sensor chips via amide bonds. Optimal pH and temperature were rapidly found by successive and alternate injections of AFP and the regeneration solution (glycine-HCl, pH 1.5) onto the anti-AFP immobilized sensor chip. The resultant optimized reaction conditions (30°C, pH 5.0) gave a 10 times higher detection limit, compared with the response under the commonly employed conditions (25°C, pH 7.4). The proposed system was revealed to provide rapid tracking response against the change in temperature and pH. Consequently, the proposed RIfS system has a potential for the effective tool towards PPI analyses.

摘要

采用微流控反射干涉光谱(RIfS)系统研究蛋白质-蛋白质相互作用(PPI)。通过无标记融合,实时研究了反应条件(pH 值和温度)对作为 PPI 模型的甲胎蛋白(AFP)及其单克隆抗体(抗 AFP)的抗原-抗体反应的影响,其中抗 AFP 通过酰胺键共价固定在羧化氮化硅传感器芯片上。通过连续和交替注入 AFP 和再生溶液(甘氨酸-HCl,pH 1.5)到抗 AFP 固定化传感器芯片上,快速找到了最佳 pH 值和温度。与常用条件(25°C,pH 值 7.4)相比,优化后的反应条件(30°C,pH 值 5.0)使检测限提高了 10 倍。所提出的系统被证明能够快速跟踪温度和 pH 值变化的响应。因此,所提出的 RIfS 系统有望成为分析 PPI 的有效工具。

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