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首页> 外文期刊>Analytical chemistry >Giant Magnetoresistive Sensors and Superparamagnetic Nanoparticles: A Chip-Scale Detection Strategy for Immunosorbent Assays
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Giant Magnetoresistive Sensors and Superparamagnetic Nanoparticles: A Chip-Scale Detection Strategy for Immunosorbent Assays

机译:巨磁阻传感器和超顺磁性纳米粒子:免疫吸附测定的芯片规模检测策略。

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摘要

Thin structures of alternating magnetic and nonmagnetic layers with a total thickness of a few hundred nanometers exhibit a phenomenon known as giant magnetoresistance. The resistance of microfabricated giant magnetoresistors (GMRs) is dependent on the strength of an external magnetic field. This paper examines magnetic labeling methodologies and surface derivatization approaches based on protein-protein binding that are aimed at forming a general set of protocols to move GMR concepts into the bioanalytical arena. As such, GMRs have been used to observe and quantify the immunological interaction between surface-bound mouse IgG and alpha-mouse IgG coated on superparamagnetic particles. Results show the response of a GMR network connected together as a set of two sense GMRs and two reference GMRs in a Wheat-stone bridge as a means to compensate for temperature effects. The response can be readily correlated to the amount of the magnetically labeled alpha-mouse IgG that is captured by an immobilized layer of mouse IgG, the presence of which is confirmed with X-ray photoelectron spectroscopy and atomic force microscopy. These results, along with a detailed description of the experimental testing platform, are described in terms of sensitivity, detection limits, and potential for multiplexing.
机译:总厚度为几百纳米的交替磁性层和非磁性层的薄结构表现出被称为巨磁阻的现象。微型巨型磁阻(GMR)的电阻取决于外部磁场的强度。本文研究了基于蛋白质-蛋白质结合的磁性标记方法和表面衍生方法,旨在形成将GMR概念引入生物分析领域的通用协议集。这样,GMR已被用于观察和定量表面结合的小鼠IgG和包覆在超顺磁性颗粒上的α-小鼠IgG之间的免疫相互作用。结果显示,作为补偿温度影响的一种方法,一个GMR网络在麦石桥中连接在一起,这是一组两个感测GMR和两个参考GMR的响应。该反应可以很容易地与固定化的小鼠IgG层捕获的磁性标记的α-小鼠IgG的量相关,其存在可以通过X射线光电子能谱和原子力显微镜确认。这些结果,连同对实验测试平台的详细描述,均以灵敏度,检测极限和多路复用的潜力进行了描述。

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