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Serially Ordered Magnetization of Nanoclusters via Control of Various Transition Metal Dopants for the Multifractionation of Cells in Microfluidic Magnetophoresis Devices

机译:通过控制多种过渡金属掺杂剂对纳米团簇的磁化进行有序磁化,以实现微流控磁性装置中细胞的多组分分离。

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摘要

A novel method (i.e., continuous magnetic cell separation in a microfluidic channel) is demonstrated to be capable of inducing multifractionation of mixed cell suspensions into multiple outlet fractions. Here, multicomponent cell separation is performed with three different distinguishable magnetic nanoclusters (MnFe2O4, Fe3O4, and CoFe2O4), which are tagged on A431 cells. Because of their mass magnetizations, which can be ideally altered by doping with magnetic atom compositions (Mn, Fe, and Co), the trajectories of cells with each magnetic nanocluster in a flow are shown to be distinct when dragged under the same external magnetic field; the rest of the magnetic characteristics of the nanoclusters are identically fixed. This proof of concept study, which utilizes the magnetization-controlled nanoclusters (NCs), suggests that precise and effective multifractionation is achievable with high-throughput and systematic accuracy for dynamic cell separation.
机译:一种新颖的方法(即在微流体通道中进行连续的磁性细胞分离)被证明能够诱导混合细胞悬浮液的多重分离成多个出口级分。在这里,用三个不同的可区分的磁性纳米团簇(MnFe2O4,Fe3O4和CoFe2O4)进行多组分细胞分离,它们被标记在A431细胞上。由于它们的质量磁化强度,可以通过掺杂磁性原子成分(Mn,Fe和Co)来理想地改变,因此在相同的外部磁场下拖动时,具有每个磁性纳米团簇的细胞的运动轨迹是不同的;纳米团簇的其余磁特性相同地固定。这项利用磁化控制的纳米团簇(NCs)进行的概念验证研究表明,对于动态细胞分离,可以实现高通量和系统准确度的精确有效的多重分离。

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