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使用微型惯性微流控离心机高效提取生物颗粒。

Efficient bioparticle extraction using a miniaturized inertial microfluidic centrifuge.

机构信息

School of Mechanical Engineering, and Jiangsu Key Laboratory for Design, and Manufacture of Micro-Nano Biomedical Instruments, Southeast University, Nanjing, 211189, China.

出版信息

Lab Chip. 2022 Sep 13;22(18):3545-3554. doi: 10.1039/d2lc00496h.

Abstract

Conventional bioparticle extraction requires labor-intensive operation, and expensive and bulky centrifuges. Herein, we report a miniaturized centrifuge by cascading four paralleled inertial spiral channels with a two-stage serpentine channel, allowing for the efficient washing and acquisition of concentrated bioparticles from background fluids. First, the effects of channel size and flow rate on particle focusing dynamics and solution exchange performances are explored to enable the optimization and wide application of our device. Then, the integrated device is fabricated and tested experimentally. The results indicate that 10-20 μm particles can be washed from the original samples with increased concentrations and with recovery efficiencies of >93%. Finally, to verify its versatility, we use our miniaturized centrifuge to successfully change the culture medium for cultured MCF-7 breast cancer cells, extract A549 lung cancer cells from a calcein-AM staining solution, purify white blood cells (WBCs) from lysed whole blood, and extract target cells from an unbonded magnetic microbead background. Compared with conventional centrifuges, our device has the advantages of simple fabrication, easy operation, and small footprint. More importantly, it offers outstanding capability for extracting bioparticles from various background fluids, and avoids bioparticle damage that may be caused by high-speed centrifugation. Therefore, we envision that our miniaturized centrifuge could be a promising alternative to traditional centrifuges in many applications.

摘要

传统的生物粒子提取需要耗费大量人力的操作,并且需要昂贵且庞大的离心机。在此,我们报告了一种通过级联四个平行的惯性螺旋通道和两级蛇形通道的微型离心机,可从背景流体中高效地洗涤和获取浓缩的生物粒子。首先,我们探索了通道尺寸和流速对粒子聚焦动力学和溶液交换性能的影响,以实现我们设备的优化和广泛应用。然后,我们制造并实验测试了集成设备。结果表明,我们的微型离心机可以从原始样品中清洗出 10-20 μm 的粒子,同时增加了浓度,并实现了 >93%的回收率。最后,为了验证其通用性,我们使用我们的微型离心机成功地更换了 MCF-7 乳腺癌细胞的培养液,从钙黄绿素 AM 染色溶液中提取 A549 肺癌细胞,从裂解的全血中纯化白细胞(WBC),并从未结合的磁性微珠背景中提取目标细胞。与传统的离心机相比,我们的设备具有制造简单、操作简便和占地面积小的优点。更重要的是,它具有从各种背景流体中提取生物粒子的出色能力,并且避免了高速离心可能导致的生物粒子损坏。因此,我们设想我们的微型离心机可能会成为许多应用中传统离心机的有前途的替代品。

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