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基于微悬臂梁的温度依赖性生物分子亲和结合的无标记表征

Microcantilever-Based Label-Free Characterization of Temperature-Dependent Biomolecular Affinity Binding.

作者信息

Wang Bin, Huang Fengliang, Nguyen Thaihuu, Xu Yong, Lin Qiao

机构信息

Department of Mechanical Engineering, Columbia University, New York, USA.

Department of Mechanical Engineering, Columbia University, New York, USA ; School of Electrical & Automation Engineering, Nanjing Normal University, Nanjing, China.

出版信息

Sens Actuators B Chem. 2013 Jan 1;176:653-659. doi: 10.1016/j.snb.2012.02.045.

Abstract

This paper presents label-free characterization of temperature-dependent biomolecular affinity binding on solid surfaces using a microcantilever-based device. The device consists of a Parylene cantilever one side of which is coated with a gold film and functionalized with molecules as an affinity receptor to a target analyte. The cantilever is located in a poly(dimethylsiloxane) (PDMS) microfluidic chamber that is integrated with a transparent indium tin oxide (ITO) resistive temperature sensor on the underlying substrate. The ITO sensor allows for real-time measurements of the chamber temperature, as well as unobstructed optical access for reflection-based optical detection of the cantilever deflection. To test the temperature-dependent binding between the target and receptor, the temperature of the chamber is maintained at a constant setpoint, while a solution of unlabeled analyte molecules is continuously infused through the chamber. The measured cantilever deflection is used to determine the target-receptor binding characteristics. We demonstrate label-free characterization of temperature-dependent binding kinetics of the platelet-derived growth factor (PDGF) protein with an aptamer receptor. Affinity binding properties including the association and dissociation rate constants as well as equilibrium dissociation constant are obtained, and shown to exhibit significant dependencies on temperature.

摘要

本文介绍了一种基于微悬臂梁的装置,用于对固体表面上温度依赖的生物分子亲和结合进行无标记表征。该装置由一个聚对二甲苯悬臂梁组成,其一侧涂有金膜,并用分子进行功能化处理,作为对目标分析物的亲和受体。悬臂梁位于聚二甲基硅氧烷(PDMS)微流体腔室中,该腔室与底层基板上的透明氧化铟锡(ITO)电阻温度传感器集成在一起。ITO传感器允许实时测量腔室温度,以及为基于反射的悬臂梁偏转光学检测提供无阻碍的光学通路。为了测试目标物与受体之间的温度依赖结合,腔室温度保持在恒定设定点,同时未标记的分析物分子溶液持续注入腔室。测量的悬臂梁偏转用于确定目标物 - 受体结合特性。我们展示了血小板衍生生长因子(PDGF)蛋白与适配体受体的温度依赖结合动力学的无标记表征。获得了包括缔合和解离速率常数以及平衡解离常数在内的亲和结合特性,并表明它们对温度有显著依赖性。

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