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磁阻生物传感器的进展。

Advances in Magnetoresistive Biosensors.

作者信息

Su Diqing, Wu Kai, Saha Renata, Peng Chaoyi, Wang Jian-Ping

机构信息

Department of Chemical Engineering and Material Science, University of Minnesota, Minneapolis, MN 55455, USA.

Department of Electrical and Computer Engineering, University of Minnesota, Minneapolis, MN 55455, USA.

出版信息

Micromachines (Basel). 2019 Dec 26;11(1):34. doi: 10.3390/mi11010034.

Abstract

Magnetoresistance (MR) based biosensors are considered promising candidates for the detection of magnetic nanoparticles (MNPs) as biomarkers and the biomagnetic fields. MR biosensors have been widely used in the detection of proteins, DNAs, as well as the mapping of cardiovascular and brain signals. In this review, we firstly introduce three different MR devices from the fundamental perspectives, followed by the fabrication and surface modification of the MR sensors. The sensitivity of the MR sensors can be improved by optimizing the sensing geometry, engineering the magnetic bioassays on the sensor surface, and integrating the sensors with magnetic flux concentrators and microfluidic channels. Different kinds of MR-based bioassays are also introduced. Subsequently, the research on MR biosensors for the detection of protein biomarkers and genotyping is reviewed. As a more recent application, brain mapping based on MR sensors is summarized in a separate section with the discussion of both the potential benefits and challenges in this new field. Finally, the integration of MR biosensors with flexible substrates is reviewed, with the emphasis on the fabrication techniques to obtain highly shapeable devices while maintaining comparable performance to their rigid counterparts.

摘要

基于磁阻(MR)的生物传感器被认为是检测作为生物标志物的磁性纳米颗粒(MNP)和生物磁场的有前途的候选者。MR生物传感器已广泛应用于蛋白质、DNA的检测以及心血管和脑信号的测绘。在本综述中,我们首先从基本原理的角度介绍三种不同的MR器件,然后介绍MR传感器的制造和表面修饰。通过优化传感几何结构、在传感器表面设计磁性生物测定法以及将传感器与磁通集中器和微流体通道集成,可以提高MR传感器的灵敏度。还介绍了不同类型的基于MR的生物测定法。随后,综述了用于检测蛋白质生物标志物和基因分型的MR生物传感器的研究。作为一个较新的应用,基于MR传感器的脑图谱在单独的一节中进行了总结,并讨论了这一新领域中的潜在益处和挑战。最后,综述了MR生物传感器与柔性基板的集成,重点介绍了在保持与刚性对应物相当性能的同时获得高度可成型器件的制造技术。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ad52/7019276/2439dc3e2197/micromachines-11-00034-g001.jpg

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