Highly Efficient Circulating Tumor Cell Isolation from Whole Blood and Label-Free Enumeration Using Polymer-Based Microfluidics with an Integrated Conductivity Sensor

化学 枚举 循环肿瘤细胞 微流控 分离(微生物学) 聚合物 全血 电导率 色谱法 纳米技术 计算生物学 癌症 转移 免疫学 生物信息学 有机化学 内科学 物理化学 组合数学 生物 材料科学 医学 数学
作者
André A. Adams,Paul I. Okagbare,Juan Feng,Mateusz L. Hupert,Donald Patterson,J. Göttert,Robin L. McCarley,Dimitris E. Nikitopoulos,Michael C. Murphy,Steven A. Soper
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:130 (27): 8633-8641 被引量:490
标识
DOI:10.1021/ja8015022
摘要

A novel microfluidic device that can selectively and specifically isolate exceedingly small numbers of circulating tumor cells (CTCs) through a monoclonal antibody (mAB) mediated process by sampling large input volumes (≥1 mL) of whole blood directly in short time periods (<37 min) was demonstrated. The CTCs were concentrated into small volumes (190 nL), and the number of cells captured was read without labeling using an integrated conductivity sensor following release from the capture surface. The microfluidic device contained a series (51) of high-aspect ratio microchannels (35 μm width × 150 μm depth) that were replicated in poly(methyl methacrylate), PMMA, from a metal mold master. The microchannel walls were covalently decorated with mABs directed against breast cancer cells overexpressing the epithelial cell adhesion molecule (EpCAM). This microfluidic device could accept inputs of whole blood, and its CTC capture efficiency was made highly quantitative (>97%) by designing capture channels with the appropriate widths and heights. The isolated CTCs were readily released from the mAB capturing surface using trypsin. The released CTCs were then enumerated on-device using a novel, label-free solution conductivity route capable of detecting single tumor cells traveling through the detection electrodes. The conductivity readout provided near 100% detection efficiency and exquisite specificity for CTCs due to scaling factors and the nonoptimal electrical properties of potential interferences (erythrocytes or leukocytes). The simplicity in manufacturing the device and its ease of operation make it attractive for clinical applications requiring one-time use operation.

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