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用于片上聚焦、切换和分离超顺磁珠和单细胞的微磁体阵列。

Micromagnet arrays for on-chip focusing, switching, and separation of superparamagnetic beads and single cells.

机构信息

Bionanoscience Group, School of Chemistry and Chemical Biology, UCD, Dublin, Ireland.

出版信息

Lab Chip. 2015 Aug 21;15(16):3370-9. doi: 10.1039/c5lc00581g.

Abstract

Nonlinear magnetophoresis (NLM) is a novel approach for on-chip transport and separation of superparamagnetic (SPM) beads, based on a travelling magnetic field wave generated by the combination of a micromagnet array (MMA) and an applied rotating magnetic field. Here, we present two novel MMA designs that allow SPM beads to be focused, sorted, and separated on-chip. Converging MMAs were used to rapidly collect the SPM beads from a large region of the chip and focus them into synchronised lines. We characterise the collection efficiency of the devices and demonstrate that they can facilitate on-chip analysis of populations of SPM beads using a single-point optical detector. The diverging MMAs were used to control the transport of the beads and to separate them based on their size. The separation efficiency of these devices was determined by the orientation of the magnetisation of the micromagnets relative to the external magnetic field and the size of the beads and relative to that of micromagnets. By controlling these parameters and the rotation of the external magnetic field we demonstrated the controlled transport of SPM bead-labelled single MDA-MB-231 cells. The use of these novel MMAs promises to allow magnetically-labelled cells to be efficiently isolated and then manipulated on-chip for analysis with high-resolution chemical and physical techniques.

摘要

非线性磁泳(NLM)是一种新颖的基于微磁体阵列(MMA)与外加旋转磁场相结合产生的行进磁场波,用于超顺磁性(SPM)珠在芯片上的传输和分离的方法。在此,我们提出了两种新颖的 MMA 设计,允许 SPM 珠在芯片上聚焦、分类和分离。汇聚 MMA 用于从芯片的较大区域快速收集 SPM 珠并将其聚焦成同步线。我们对器件的收集效率进行了表征,并证明它们可以使用单点光学检测器促进 SPM 珠群体的芯片上分析。发散 MMA 用于控制珠的传输并基于其大小进行分离。这些设备的分离效率取决于微磁铁相对于外磁场的磁化方向以及珠的尺寸相对于微磁铁的尺寸。通过控制这些参数和外加磁场的旋转,我们演示了 SPM 珠标记的单个 MDA-MB-231 细胞的受控传输。这些新型 MMA 的使用有望实现对磁性标记细胞的高效分离,然后在芯片上进行操作,以便使用高分辨率化学和物理技术进行分析。

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