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On-chip bio-analyte detection utilizing the velocity of magnetic microparticles in a fluid

机译:利用流体中磁性微粒的速度进行芯片上生物分析物检测

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摘要

A biosensing principle utilizing the motion of suspended magnetic microparticles in a microfluidic system is presented. The system utilizes the innovative concept of the velocity dependence of magnetic microparticles (MPs) due to their volumetric change when analyte is attached to their surface via antibody–antigen binding. When the magnetic microparticles are attracted by a magnetic field within a microfluidic channel their velocity depends on the presence of analyte. Specifically, their velocity decreases drastically when the magnetic microparticles are covered by (nonmagnetic) analyte (LMPs) due to the increased drag force in the opposite direction to that of the magnetic force. Experiments were carried out as a proof of concept. A promising 52% decrease in the velocity of the LMPs in comparison to that of the MPs was measured when both of them were accelerated inside a microfluidic channel using an external permanent magnet. The presented biosensing methodology offers a compact and integrated solution for a new kind of on-chip analysis with potentially high sensitivity and shorter acquisition time than conventional laboratory based systems.
机译:提出了利用微流体系统中悬浮的磁性微粒运动的生物传感原理。该系统利用了创新的概念,即当分析物通过抗体-抗原结合而附着在其表面时,磁性微粒(MPs)的体积变化会导致速度依赖性。当磁性微粒被微流体通道内的磁场吸引时,它们的速度取决于分析物的存在。具体地,当磁性微粒被(非磁性)分析物(LMP)覆盖时,它们的速度急剧下降,这是由于在与磁力相反的方向上增加了阻力。进行实验作为概念证明。当使用外部永磁体在微流体通道内将LMP加速时,与MP相比,LMP的速度有望降低52%。提出的生物传感方法为新型片上分析提供了一种紧凑而集成的解决方案,与传统的基于实验室的系统相比,具有潜在的高灵敏度和更短的采集时间。

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