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Dynamic Halbach array magnet integrated microfluidic system for the continuous-flow separation of rare tumor cells

机译:动态Halbach阵列磁体集成微流体系统,用于稀有肿瘤细胞的连续流动分离

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Circulating tumor cells (CTCs), the most representative rare cells in peripheral blood, have received great attention due to their clinical utility in liquid biopsy. The downstream analysis of intact CTCs isolated from peripheral blood provides important clinical information for personalized medicine. However, current CTC isolation and detection methods have been challenged by their extreme rarity and heterogeneity. In this study, we developed a novel microfluidic system with a continuously moving Halbach array magnet (dHAMI microfluidic system) for negative isolation CTCs from whole blood, which aimed to capture non-target white blood cells (WBCs) and elute target CTCs. The dynamic and continuous movement of the Halbach array magnet generated a continuous magnetic force acting on the magnetic bead-labelled WBCs in the continuous-flow fluid to negatively exclude the WBCs from the CTCs. Furthermore, the continuously moving magnetic field effectively eliminated the effect of magnetic bead aggregation on the fluid flow to realize the continuous-flow separation of the CTCs without a sample loading volume limitation. The experimental procedure for CTC negative isolation using the dHAMI microfluidic system could be completed within 40 min. Under the optimized experimental conditions of the dHAMI microfluidic system, including the flow rate and concentration of the immunomagnetic bead, the average CTC capture rate over a range of spiked cell numbers (50–1000 cancer cells per mL) was up to 91.6% at a flow rate of 100 μL min ~(?1) . Finally, the CTCs were successfully detected in 10 of 10 (100%) blood samples from patients with cancer. Therefore, the dHAMI microfluidic system could effectively isolate intact and heterogeneous CTCs for downstream cellular and molecular analyses, and this robust microfluidic platform with an excellent magnetic manipulation performance also has great application potential for the separation of other rare cells.
机译:循环肿瘤细胞(CTC),外周血中最具代表性的稀有细胞,由于其在液检中的临床用途而受到极大的关注。从外周血中分离的完整CTC的下游分析为个性化医学提供了重要的临床信息。然而,目前的CTC隔离和检测方法受到其极端罕见和异质性的挑战。在这项研究中,我们开发了一种新的微流体系统,其具有来自全血的负分离CTC的连续移动的Halbach阵列磁体(DHAMI微流体系统),其旨在捕获非靶血细胞(WBC)和洗脱靶CTC。 Halbach阵列磁体的动态和连续运动产生了在连续流体中作用在磁性珠标记的WBC上的连续磁力,以呈负载CTCs的WBC。此外,连续移动的磁场有效地消除了磁珠聚集对流体流动的影响,以实现CTC的连续流动分离而没有样品负载量限制。使用DHAMI微流体系统的CTC阴性分离的实验程序可以在40分钟内完成。在DHAMI微流体系统的优化实验条件下,包括免疫磁珠的流速和浓度,在一系列尖刺细胞数(每mL癌细胞)范围内的平均CTC捕获率高达91.6%流速为100μlmin〜(?1)。最后,在癌症患者的10个(100%)血液样本中成功检测到CTC。因此,DHAMI微流体系统可以有效地分离用于下游细胞和分子分析的完整和异质CTC,并且这种具有优异磁化性能的鲁棒微流体平台也具有很大的应用潜力,用于分离其他稀有细胞。

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