Department of Biomedical Engineering, Lund University, Lund, Sweden.
Lab Chip. 2019 Apr 9;19(8):1406-1416. doi: 10.1039/c9lc00181f.
Multiplex separation of mixed cell samples is required in a variety of clinical and research applications. Herein, we present an acoustic microchip with multiple outlets and integrated pre-alignment channel to enable high performance and label-free separation of three different cell or particle fractions simultaneously at high sample throughput. By implementing a new cooling system for rigorous temperature control and minimal acoustic energy losses, we were able to operate the system isothermally and sort suspensions of 3, 5 and 7 μm beads with high efficiencies (>95.4%) and purities (>96.3%) at flow rates up to 500 μL min-1 corresponding to a throughput of ∼2.5 × 106 beads per min. Also, human viable white blood cells were successfully fractionated into lymphocytes, monocytes and granulocytes with high purities of 96.5 ± 1.6%, 71.8 ± 10.1% and 98.8 ± 0.5%, respectively, as well as high efficiencies (96.8 ± 3.3%, 66.7 ± 3.2% and 99.0 ± 0.7%) at flow rates up to 100 μL min-1 (∼100 000 cells per min). By increasing the flow rate up to 300 μL min-1 (∼300 000 cells per min) both lymphocytes and granulocytes were still recovered with high purities (92.8 ± 1.9%, 98.2 ± 1 .0%), whereas the monocyte purity decreased to 20.9 ± 10.3%. The proposed isothermal multiplex acoustophoresis platform offers efficient fractionation of complex samples in a label-free and continuous manner at thus far unreached high sample throughput rates.
多通道微流控芯片在多种临床和研究应用中都需要实现混合细胞样本的多路分离。在此,我们提出了一种具有多个出口和集成预对准通道的声微流控芯片,可在高通量下同时对三种不同的细胞或颗粒分数进行高性能和无标记的分离。通过实施新的冷却系统以实现严格的温度控制和最小的声能损耗,我们能够使系统等温操作,并以高达 500 μL min-1 的流速高效 (>95.4%)和高纯度 (>96.3%)地分离 3、5 和 7 μm 微珠悬浮液,对应的通量约为 2.5 × 106 个珠子/分钟。此外,还成功地将人类活白细胞分离成淋巴细胞、单核细胞和粒细胞,纯度分别高达 96.5 ± 1.6%、71.8 ± 10.1%和 98.8 ± 0.5%,效率分别高达 96.8 ± 3.3%、66.7 ± 3.2%和 99.0 ± 0.7%,流速高达 100 μL min-1(约 100 000 个细胞/分钟)。通过将流速提高到 300 μL min-1(约 300 000 个细胞/分钟),仍然可以高纯度 (>92.8 ± 1.9%、98.2 ± 1.0%)回收淋巴细胞和粒细胞,而单核细胞纯度下降至 20.9 ± 10.3%。所提出的等温多路声电泳平台以无标记和连续的方式在迄今为止未达到的高通量下实现了复杂样本的高效分离。