Schneider Thomas, Moore Lee R, Jing Ying, Haam Seungjoo, Williams P Stephen, Fleischman Aaron J, Roy Shuvo, Chalmers Jeffrey J, Zborowski Maciej
Department of Biomedical Engineering, The Cleveland Clinic Foundation, 9500 Euclid Avenue, Cleveland, OH 44195, USA.
J Biochem Biophys Methods. 2006 Jul 31;68(1):1-21. doi: 10.1016/j.jbbm.2006.02.011. Epub 2006 Mar 29.
Cell separation is important in medical and biological research and plays an increasingly important role in clinical therapy and diagnostics, such as rare cancer cell detection in blood. The immunomagnetic labeling of cells with antibodies conjugated to magnetic nanospheres gives rise to a proportional relationship between the number of magnetic nanospheres attached to the cell and the cell surface marker number. This enables the potential fractionation of cell populations by magnetophoretic mobility (MM). We exploit this feature with our apparatus, the Dipole Magnet Flow Fractionator (DMFF), which consists of an isodynamic magnetic field, an orthogonally-oriented thin ribbon of cell suspension in continuous sheath flow, and ten outlet flows. From a sample containing a 1:1 mixture of immunomagnetically labeled (label+) and unlabeled (label-) cells, we achieved an increase in enrichment of the label+ cell fraction with increasing outlet numbers in the direction of the magnetic field gradient (up to 10-fold). The total recovery of the ten outlet fractions was 90.0+/-7.7%. The mean MM of label+ cells increased with increasing outlet number by up to a factor of 2.3. The postulated proportionality between the number of attached magnetic beads and the number of cell surface markers was validated by comparison of MM measured by cell tracking velocimetry (CTV) with cell florescence intensity measured by flow cytometry.
细胞分离在医学和生物学研究中很重要,并且在临床治疗和诊断中发挥着越来越重要的作用,例如血液中罕见癌细胞的检测。用与磁性纳米球偶联的抗体对细胞进行免疫磁标记,会使附着在细胞上的磁性纳米球数量与细胞表面标志物数量之间产生比例关系。这使得通过磁泳迁移率(MM)对细胞群体进行潜在的分级分离成为可能。我们利用我们的装置——偶极磁流分级仪(DMFF)来利用这一特性,该装置由一个等动力学磁场、一个处于连续鞘流中的正交取向细胞悬浮液细带以及十个出口流组成。从含有免疫磁标记(标记+)和未标记(标记-)细胞1:1混合物的样品中,我们发现在磁场梯度方向上,随着出口数量增加,标记+细胞组分的富集度提高(高达10倍)。十个出口组分的总回收率为90.0±7.7%。标记+细胞的平均MM随着出口数量增加而增加,最高可达2.3倍。通过比较细胞跟踪测速法(CTV)测量的MM与流式细胞术测量的细胞荧光强度,验证了附着磁珠数量与细胞表面标志物数量之间假定的比例关系。