Shanghai Jiao Tong University, Shanghai First People's Hospital, Medical College, People's Republic of China.
IET Nanobiotechnol. 2011 Dec;5(4):114-20. doi: 10.1049/iet-nbt.2011.0024.
The authors have developed a novel fabrication process for a selective micro-magnetic activated cell sorting (MACS) chip based on ferromagnetic material encapsulated micropillars (FMEMs), which is technically simple and low cost. The FMEM produces a high field gradient to magnetically attract, capture and hold cells on its interface. System test simulations were carried out to predict the efficacy of target capture and verify that the actual magnetic particles behaviour agreed well with model predictions. To determine the ability of the novel microMACS chip to capture circulating tumour cells (CTCs), SW620 human colon cancer cells were used in an in vitro flow model system and were able to be captured with the efficiency of 72.8%. The obvious accumulation of CTCs at a certain location on the chip suggested shear stress events at the pillar boundary may influence efficacy, and should be considered in further optimisation efforts.
作者开发了一种基于铁磁材料封装微柱(FMEM)的新型选择性微磁激活细胞分选(MACS)芯片的制造工艺,该工艺简单且成本低。FMEM 产生高的磁场梯度,以磁性吸引、捕获和保持其界面上的细胞。进行了系统测试模拟以预测目标捕获的效果,并验证实际磁性颗粒的行为与模型预测吻合良好。为了确定新型微 MACS 芯片捕获循环肿瘤细胞(CTC)的能力,在体外流动模型系统中使用了 SW620 人结肠癌细胞,其捕获效率为 72.8%。CTC 在芯片上的某个位置明显聚集表明在柱边界处的剪切应力事件可能会影响效率,在进一步的优化工作中应加以考虑。