Che James, Mach Albert J, Go Derek E, Talati Ish, Ying Yong, Rao Jianyu, Kulkarni Rajan P, Di Carlo Dino
Department of Bioengineering, University of California Los Angeles, Los Angeles, California, United States of America.
PLoS One. 2013 Oct 28;8(10):e78194. doi: 10.1371/journal.pone.0078194. eCollection 2013.
Evaluation of pleural fluids for metastatic cells is a key component of diagnostic cytopathology. However, a large background of smaller leukocytes and/or erythrocytes can make accurate diagnosis difficult and reduce specificity in identification of mutations of interest for targeted anti-cancer therapies. Here, we describe an automated microfluidic system (Centrifuge Chip) which employs microscale vortices for the size-based isolation and concentration of cancer cells and mesothelial cells from a background of blood cells. We are able to process non-diluted pleural fluids at 6 mL/min and enrich target cells significantly over the background; we achieved improved purity in all patient samples analyzed. The resulting isolated and viable cells are readily available for immunostaining, cytological analysis, and detection of gene mutations. To demonstrate the utility towards aiding companion diagnostics, we also show improved detection accuracy of KRAS gene mutations in lung cancer cells processed using the Centrifuge Chip, leading to an increase in the area under the curve (AUC) of the receiver operating characteristic from 0.90 to 0.99. The Centrifuge Chip allows for rapid concentration and processing of large volumes of bodily fluid samples for improved cytological diagnosis and purification of cells of interest for genetic testing, which will be helpful for enhancing diagnostic accuracy.
对转移性细胞进行胸水评估是诊断细胞病理学的关键组成部分。然而,大量较小的白细胞和/或红细胞背景会使准确诊断变得困难,并降低在识别靶向抗癌治疗相关的感兴趣突变时的特异性。在此,我们描述了一种自动化微流控系统(离心芯片),该系统利用微尺度涡旋从血细胞背景中基于大小分离和浓缩癌细胞和间皮细胞。我们能够以6 mL/分钟的速度处理未稀释的胸水,并显著富集目标细胞超过背景细胞;在所有分析的患者样本中,我们都提高了纯度。所得的分离且有活力的细胞可随时用于免疫染色、细胞学分析和基因突变检测。为了证明其在辅助伴随诊断方面的效用,我们还展示了使用离心芯片处理的肺癌细胞中KRAS基因突变检测准确性的提高,导致受试者工作特征曲线下面积(AUC)从0.90增加到0.99。离心芯片能够快速浓缩和处理大量体液样本,以改善细胞学诊断并纯化感兴趣的细胞用于基因检测,这将有助于提高诊断准确性。