Department of Chemistry, The University of Kansas, Lawrence, KS 66047, USA.
Center of BioModular Multiscale Systems for Precision Medicine, Lawrence, KS 66045, USA.
Cells. 2020 Feb 24;9(2):519. doi: 10.3390/cells9020519.
The role of circulating plasma cells (CPCs) and circulating leukemic cells (CLCs) as biomarkers for several blood cancers, such as multiple myeloma and leukemia, respectively, have recently been reported. These markers can be attractive due to the minimally invasive nature of their acquisition through a blood draw (i.e., liquid biopsy), negating the need for painful bone marrow biopsies. CPCs or CLCs can be used for cellular/molecular analyses as well, such as immunophenotyping or fluorescence in situ hybridization (FISH). FISH, which is typically carried out on slides involving complex workflows, becomes problematic when operating on CLCs or CPCs due to their relatively modest numbers. Here, we present a microfluidic device for characterizing CPCs and CLCs using immunofluorescence or FISH that have been enriched from peripheral blood using a different microfluidic device. The microfluidic possessed an array of cross-channels (2-4 µm in depth and width) that interconnected a series of input and output fluidic channels. Placing a cover plate over the device formed microtraps, the size of which was defined by the width and depth of the cross-channels. This microfluidic chip allowed for automation of immunofluorescence and FISH, requiring the use of small volumes of reagents, such as antibodies and probes, as compared to slide-based immunophenotyping and FISH. In addition, the device could secure FISH results in <4 h compared to 2-3 days for conventional FISH.
最近有报道称,循环浆细胞(CPCs)和循环白血病细胞(CLCs)分别作为多发性骨髓瘤和白血病等几种血液癌的生物标志物具有重要作用。这些标志物具有吸引力,因为它们可以通过抽取血液(即液体活检)获得,具有微创性,无需进行痛苦的骨髓活检。CPCs 或 CLCs 也可用于细胞/分子分析,如免疫表型分析或荧光原位杂交(FISH)。FISH 通常在涉及复杂工作流程的载玻片上进行,但由于 CLCs 或 CPCs 的数量相对较少,因此在操作它们时会出现问题。在这里,我们提出了一种使用免疫荧光或 FISH 对从外周血中富集的 CPCs 和 CLCs 进行特征分析的微流控装置,该装置使用了另一种微流控装置。该微流控装置具有一系列交叉通道(深度和宽度为 2-4 µm),可将一系列输入和输出流体通道相互连接。在设备上放置一个盖板可形成微阱,其大小由交叉通道的宽度和深度决定。与基于载玻片的免疫表型分析和 FISH 相比,这种微流控芯片允许自动化进行免疫荧光和 FISH,所需的试剂(如抗体和探针)体积较小。此外,与传统的 FISH 相比,该设备可在<4 小时内获得 FISH 结果,而传统的 FISH 需要 2-3 天。