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利用微流控芯片上磁珠的“捕获-释放”机制进行样品的同步洗涤和浓缩。

Simultaneous sample washing and concentration using a "trapping-and-releasing" mechanism of magnetic beads on a microfluidic chip.

机构信息

Laboratory of Microsystems, Ecole Polytechnique Fédérale de Lausanne (EPFL), 1015 Lausanne, Switzerland.

出版信息

Analyst. 2011 Mar 21;136(6):1157-66. doi: 10.1039/c0an00654h. Epub 2011 Jan 26.

Abstract

Simultaneous washing and concentration of functionalized magnetic beads in a complex sample solution were demonstrated by applying a rotational magnetic actuation system to a microfluidic chip under continuous flow conditions. The rotation of periodically arranged small permanent magnets close to the fluidic channel carrying a magnetic bead suspension allows trapping and releasing of the beads along the fluidic channel in a periodical manner. Each trapping and releasing event resembles one washing cycle. A purification efficiency of magnetic beads out of a mixed magnetic and non-magnetic bead sample solution of 83±4% at a flow rate of 0.5 µL min(-1), and a magnetic bead recovery or concentration efficiency of 91±5% were achieved using a flow rate of 0.2 µL min(-1). The detection performance of the device was experimentally evaluated with two different bioassays, using either streptavidin-coated magnetic beads in combination with biotinylated fluorescent isothiocyanate (FITC), or a mouse antigen (Ag)-antibody (Ab) system.

摘要

通过在连续流动条件下将旋转磁激励系统应用于微流控芯片,实现了在复杂样品溶液中同时对功能化磁珠进行洗涤和浓缩。周期性排列的小永磁体靠近携带磁珠悬浮液的流道的旋转,允许以周期性的方式沿流道捕获和释放珠粒。每个捕获和释放事件类似于一个洗涤循环。在 0.5 µL min(-1)的流速下,从混合有磁性和非磁性珠粒的样品溶液中,磁珠的纯化效率达到 83±4%,而在 0.2 µL min(-1)的流速下,磁珠的回收率或浓缩效率达到 91±5%。使用两种不同的生物测定法,实验评估了该装置的检测性能,一种是使用链霉亲和素包被的磁珠与生物素化的荧光异硫氰酸酯(FITC)结合,另一种是使用小鼠抗原(Ag)-抗体(Ab)系统。

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