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首页> 外文期刊>Lab on a chip >High-purity and label-free isolation of circulating tumor cells (CTCs) in a microfluidic platform by using optically-induced-dielectrophoretic (ODEP) force
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High-purity and label-free isolation of circulating tumor cells (CTCs) in a microfluidic platform by using optically-induced-dielectrophoretic (ODEP) force

机译:通过使用光诱导介电电泳(ODEP)力在微流体平台中高纯度和无标记地分离循环肿瘤细胞(CTC)

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Negative selection-based circulating tumor cell (CTC) isolation is believed valuable to harvest more native, and in particular all possible CTCs without biases relevant to the properties of surface antigens on the CTCs. Under such a cell isolation strategy, however, the CTC purity is normally compromised. To address this issue, this study reports the integration of optically-induced-dielectrophoretic (ODEP) force-based cell manipulation, and a laminar flow regime in a microfluidic platform for the isolation of untreated, and highly pure CTCs after conventional negative selection-based CTC isolation. In the design, six sections of moving light-bar screens were continuously and simultaneously exerted in two parallel laminar flows to concurrently separate the cancer cells from the leukocytes based on their size difference and electric properties. The separated cell populations were further partitioned, delivered, and collected through the two flows. With this approach, the cancer cells can be isolated in a continuous, effective, and efficient manner. In this study, the operating conditions of ODEP for the manipulation of prostate cancer (PC-3) and human oral cancer (OEC-M1) cells, and leukocytes with minor cell aggregation phenomenon were first characterized. Moreover, performances of the proposed method for the isolation of cancer cells were experimentally investigated. The results showed that the presented CTC isolation scheme was able to isolate PC-3 cells or OEC-M1 cells from a leukocyte background with high recovery rate (PC-3 cells: 76-83%, OEC-M1 cells: 61-68%), and high purity (PC-3 cells: 74-82%, OEC-M1 cells: 64-66%) (set flow rate: 0.1 μl min~(-1) and sample volume: 1 μl). The latter is beyond what is currently possible in the conventional CTC isolations. Moreover, the viability of isolated cancer cells was evaluated to be as high as 94 + 2%, and 95 + 3% for the PC-3, and OEC-M1 cells, respectively. Furthermore, the isolated cancer cells were also shown to preserve their proliferative capability. As a whole, this study has presented an ODEP-based microfluidic platform that is capable of isolating CTCs in a continuous, label-free, cell-friendly, and particularly highly pure manner. All these traits are found particularly meaningful for exploiting the harvested CTCs for the subsequent cell-based, or biochemical assays.
机译:据信,基于阴性选择的循环肿瘤细胞(CTC)分离对于收获更多天然的,特别是所有可能的CTC,而没有与CTC上表面抗原的性质有关的偏见是有价值的。但是,在这种细胞分离策略下,通常会损害CTC的纯度。为了解决这个问题,本研究报告了基于光诱导介电电泳(ODEP)力的细胞操作和微流控平台中的层流机制的集成,用于在基于常规负选择的基础上分离未经处理的高纯度CTC CTC隔离。在设计中,连续移动两个平行的层流连续并同时施加六部分移动的光幕,以根据癌细胞的大小差异和电特性同时分离癌细胞和白细胞。分离的细胞群通过两个流进一步分配,传递和收集。通过这种方法,可以以连续,有效和高效的方式分离癌细胞。在这项研究中,ODEP的操作条件首先用于治疗前列腺癌(PC-3)和人口腔癌(OEC-M1)细胞,以及具有较小细胞聚集现象的白细胞。此外,实验研究了所提出的用于分离癌细胞的方法的性能。结果表明,提出的CTC分离方案能够从白细胞背景中分离出PC-3细胞或OEC-M1细胞,回收率高(PC-3细胞:76-83%,OEC-M1细胞:61-68% )和高纯度(PC-3细胞:74-82%,OEC-M1细胞:64-66%)(设定流速:0.1μlmin〜(-1)和样品量:1μl)。后者超出了常规CTC隔离中当前可能的范围。此外,对于PC-3和OEC-M1细胞,分离出的癌细胞的生存能力分别高达94 + 2%和95 + 3%。此外,分离的癌细胞也显示出保留其增殖能力。总体而言,这项研究提出了一种基于ODEP的微流体平台,该平台能够以连续,无标记,细胞友好且特别是高纯度的方式分离CTC。发现所有这些特征对于将收获的四氯化碳用于随后的基于细胞或生化的测定特别有意义。

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