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使用热塑性微库尔特计数器(μCC)对亲和性富集的循环肿瘤细胞(CTC)进行无标记计数。

Label-free counting of affinity-enriched circulating tumor cells (CTCs) using a thermoplastic micro-Coulter counter (μCC).

机构信息

Department of Chemistry, The University of Kansas, Lawrence, KS 66047, USA and Center of BioModular Multiscale Systems for Precision Medicine, The University of Kansas, Lawrence, KS 66047, USA and Key Laboratory of East China Sea Fishery Resources Exploitation, Ministry of Agriculture and Rural Affairs, East China Sea Fisheries Research Institute, Chinese Academy of Fishery Sciences, Shanghai 200090, China.

BioFluidica, Inc., Lawrence, KS 66047, USA.

出版信息

Analyst. 2020 Mar 2;145(5):1677-1686. doi: 10.1039/c9an01802f.

Abstract

Coulter counters are used for counting particles and biological cells. Most Coulter counters are designed to analyze a sample without the ability to pre-process the sample prior to counting. For the analysis of rare cells, such as circulating tumor cells (CTCs), it is not uncommon to require enrichment before counting due to the modest throughput of μCCs and the high abundance of interfering cells, such as blood cells. We report a microfluidic-based Coulter Counter (μCC) fabricated using simple, low-cost techniques for counting rare cells that can be interfaced to sample pre- and/or post-processing units. In the current work, a microfluidic device for the affinity-based enrichment of CTCs from whole blood into a relatively small volume of ∼10 μL was interfaced to the μCC to allow for exhaustive counting of single CTCs following release of the CTCs from the enrichment chip. When integrated to the CTC affinity enrichment chip, the μCC could count the CTCs without loss and the cells could be collected for downstream molecular profiling or culturing if required. The μCC sensor counting efficiency was >93% and inter-chip variability was ∼1%.

摘要

库尔特计数器用于计数粒子和生物细胞。大多数库尔特计数器旨在分析样本,而无需在计数前对样本进行预处理。对于稀有细胞(如循环肿瘤细胞 (CTC))的分析,由于 μCC 的通量较低,干扰细胞(如血细胞)的丰度较高,因此在计数前通常需要进行富集。我们报告了一种基于微流控的库尔特计数器 (μCC),它使用简单、低成本的技术制造,用于计数稀有细胞,可以与样品预处理和/或后处理单元接口。在目前的工作中,一种用于将 CTC 从全血中亲和性富集到相对较小体积(约 10 μL)的微流控装置与 μCC 接口,以允许在从富集芯片释放 CTC 后对单个 CTC 进行详尽计数。当与 CTC 亲和性富集芯片集成时,μCC 可以在不损失细胞的情况下对 CTC 进行计数,如果需要,还可以收集细胞进行下游分子分析或培养。μCC 传感器的计数效率>93%,芯片间变异性约为 1%。

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