用于高通量分离循环肿瘤细胞 (CTC) 的高宽比微通道阵列。

IF 1.6 4区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Mateusz L Hupert, Joshua M Jackson, Hong Wang, Małgorzata A Witek, Joyce Kamande, Matthew I Milowsky, Young E Whang, Steven A Soper
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引用次数: 0

摘要

基于微系统的技术能够实现流程自动化,从而实现护理点操作,这为体外诊断领域提供了新的机遇。例如,用于从复杂的异质样本中自动分离和分析循环肿瘤细胞(CTC)的微系统提高了回收率和选择性,为这一重要的生物标记物提供了新的机遇。遗憾的是,许多现有的微流控系统缺乏通量能力,而且/或者制造成本过高,无法在临床检测中广泛使用。在此,我们介绍一种一次性全聚合物微流控系统,用于直接从全血输入中高通量(HT)分离 CTC。该装置采用了高纵横比(HAR)、平行、正弦曲线微通道阵列(25 微米 × 150 微米;宽 × 深;AR = 6.0),通道壁用抗 EpCAM 抗体共价修饰,以提供基于亲和力的 CTCs 分离。通道宽度与 CTC 的平均直径(12-25 微米)相似,在最大限度地提高细胞/壁相互作用的概率方面起着至关重要的作用,可实现高 CTC 回收率。加长的通道深度可以提高优化流速(微通道中的流速为 2 毫米/秒)下的通量;最大限度地提高细胞回收率,并防止血液处理过程中微流体通道堵塞。正交于正弦毛细管通道网络的大横截面积进料和出料通道(即所谓的 Z 形几何)可提供微通道阵列的流体寻址,且设备占地面积最小。计算模型用于确认隔离床中通道的均匀寻址。目前已成功构建了具有 50 到 320 个不同数量平行微通道的设备。之所以选择环烯烃共聚物(COC)作为基底材料,是因为它在抗体附着前对 HAR 微通道表面进行紫外线活化时性能优越。通过直接从转移性前列腺癌患者的血液中分离出 CTC,HT-CTC 设备的操作得到了验证。CTC 样品纯度高(污染性白细胞数量低),可直接裂解分离出的 CTC 并进行分子分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Arrays of High-Aspect Ratio Microchannels for High-Throughput Isolation of Circulating Tumor Cells (CTCs).

Arrays of High-Aspect Ratio Microchannels for High-Throughput Isolation of Circulating Tumor Cells (CTCs).

Arrays of High-Aspect Ratio Microchannels for High-Throughput Isolation of Circulating Tumor Cells (CTCs).

Arrays of High-Aspect Ratio Microchannels for High-Throughput Isolation of Circulating Tumor Cells (CTCs).

Microsystem-based technologies are providing new opportunities in the area of in vitro diagnostics due to their ability to provide process automation enabling point-of-care operation. As an example, microsystems used for the isolation and analysis of circulating tumor cells (CTCs) from complex, heterogeneous samples in an automated fashion with improved recoveries and selectivity are providing new opportunities for this important biomarker. Unfortunately, many of the existing microfluidic systems lack the throughput capabilities and/or are too expensive to manufacture to warrant their widespread use in clinical testing scenarios. Here, we describe a disposable, all-polymer, microfluidic system for the high-throughput (HT) isolation of CTCs directly from whole blood inputs. The device employs an array of high aspect ratio (HAR), parallel, sinusoidal microchannels (25 µm × 150 µm; W × D; AR = 6.0) with walls covalently decorated with anti-EpCAM antibodies to provide affinity-based isolation of CTCs. Channel width, which is similar to an average CTC diameter (12-25 µm), plays a critical role in maximizing the probability of cell/wall interactions and allows for achieving high CTC recovery. The extended channel depth allows for increased throughput at the optimized flow velocity (2 mm/s in a microchannel); maximizes cell recovery, and prevents clogging of the microfluidic channels during blood processing. Fluidic addressing of the microchannel array with a minimal device footprint is provided by large cross-sectional area feed and exit channels poised orthogonal to the network of the sinusoidal capillary channels (so-called Z-geometry). Computational modeling was used to confirm uniform addressing of the channels in the isolation bed. Devices with various numbers of parallel microchannels ranging from 50 to 320 have been successfully constructed. Cyclic olefin copolymer (COC) was chosen as the substrate material due to its superior properties during UV-activation of the HAR microchannels surfaces prior to antibody attachment. Operation of the HT-CTC device has been validated by isolation of CTCs directly from blood secured from patients with metastatic prostate cancer. High CTC sample purities (low number of contaminating white blood cells, WBCs) allowed for direct lysis and molecular profiling of isolated CTCs.

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来源期刊
CiteScore
5.20
自引率
9.50%
发文量
147
审稿时长
3.3 months
期刊介绍: "Microsystem Technologies - Micro- and Nanosystems. Information Storage and Processing Systems" is intended to provide rapid publication of important and timely results on electromechanical, materials science, design, and manufacturing issues of these systems and their components. The MEMS/NEMS (Micro/NanoElectroMechanical Systems) area includes sensor, actuators and other micro/nanosystems, and micromechatronic systems integration. Information storage systems include magnetic recording, optical recording, and other recording devices, e.g., rigid disk, flexible disk, tape and card drives. Processing systems include copiers, printers, scanners and digital cameras. All contributions are of international archival quality. These are refereed by MST editors and their reviewers by rigorous journal standards. The journal covers a wide range of interdisciplinary technical areas. It brings together and cross-links the knowledge, experience, and capabilities of academic and industrial specialists in many fields. Finally, it contributes to the economically and ecologically sound production of reliable, high-performance MEMS and information storage & processing systems.
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