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Quantitative Magnetic Separation of Particles and Cells Using Gradient Magnetic Ratcheting

机译:梯度磁棘轮对颗粒和细胞的定量磁分离

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Extraction of rare target cells from biosamples is enabling for life science research. Traditional rare cell separation techniques, such as magnetic activated cell sorting, are robust but perform coarse, qualitative separations based on surface antigen expression. A quantitative magnetic separation technology is reported using high-force magnetic ratcheting over arrays of magnetically soft micropillars with gradient spacing, and the system is used to separate and concentrate magnetic beads based on iron oxide content (IOC) and cells based on surface expression. The system consists of a microchip of permalloy micropillar arrays with increasing lateral pitch and a mechatronic device to generate a cycling magnetic field. Particles with higher IOC separate and equilibrate along the miropillar array at larger pitches. A semi-analytical model is developed that predicts behavior for particles and cells. Using the system, LNCaP cells are separated based on the bound quantity of 1 m anti-epithelial cell adhesion molecule (EpCAM) particles as a metric for expression. The ratcheting cytometry system is able to resolve a +/- 13 bound particle differential, successfully distinguishing LNCaP from PC3 populations based on EpCAM expression, correlating with flow cytometry analysis. As a proof-of-concept, EpCAM-labeled cells from patient blood are isolated with 74% purity, demonstrating potential toward a quantitative magnetic separation instrument.
机译:从生物样品中提取稀有靶细胞有助于生命科学研究。传统的稀有细胞分离技术(例如磁活化细胞分选)虽然功能强大,但可以根据表面抗原表达进行粗略的定性分离。报道了一种定量磁分离技术,该技术使用高力磁棘齿在具有梯度间距的磁性软微柱阵列上进行分离,并且该系统用于分离和浓缩基于氧化铁含量(IOC)的磁珠以及基于表面表达的细胞。该系统由具有增加的横向间距的坡莫合金微柱阵列的微芯片和产生循环磁场的机电装置组成。具有较高IOC的粒子会以较大间距沿微柱阵列分离并平衡。建立了一个半分析模型,可以预测颗粒和细胞的行为。使用该系统,基于1 m抗上皮细胞粘附分子(EpCAM)颗粒的结合量作为表达指标,分离LNCaP细胞。棘轮式细胞仪系统能够解决+/- 13结合的颗粒差异,基于EpCAM表达成功地将LNCaP与PC3群体区分开,与流式细胞仪分析相关。作为概念验证,从患者血液中分离出EpCAM标记的细胞,纯度为74%,证明了其在定量磁分离仪中的潜力。

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