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Dynamic Analysis of Drug-Induced Cytotoxicity Using Chip-Based Dielectrophoretic Cell Immobilization Technology

机译:基于芯片的介电泳细胞固定技术动态分析药物诱导的细胞毒性

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Quantification of programmed and accidental cell death provides useful end-points for the anticancer drug efficacy assessment. Cell death is, however, a stochastic process. Therefore, the opportunity to dynamically quantify individual cellular states is advantageous over the commonly employed static, end-point assays. In this work, we describe the development and application of a microfabricated, dielectrophoretic (DEP) cell immobilization platform for the real-time analysis of cancer drug-induced cytotoxicity. Microelectrode arrays were designed to generate weak electro-thermal vortices that support efficient drug mixing and rapid cell immobilization at the delta-shape regions of strong electric field formed between the opposite microelectrodes. We applied this technology to the dynamic analysis of hematopoietic tumor cells that represent a particular challenge for real-time imaging due to their dislodgement during image acquisition. The present study was designed to provide a comprehensive mechanistic rationale for accelerated cell-based assays on DEP chips using real-time labeling with cell permeability markers. In this context, we provide data on the complex behavior of viable vs dying cells in the DEP fields and probe the effects of DEP fields upon cell responses to anticancer drugs and overall bioassay performance. Results indicate that simple DEP cell immobilization technology can be readily applied for the dynamic analysis of investigational drugs in hematopoietic cancer cells. This ability is of particular importance in studying the outcome of patient derived cancer cells, when exposed to therapeutic drugs, as these cells are often rare and difficult to collect, purify and immobilize.
机译:程序性和意外细胞死亡的量化为抗癌药疗效评估提供了有用的终点。然而,细胞死亡是随机过程。因此,动态量化单个细胞状态的机会比通常采用的静态,终点检测更具优势。在这项工作中,我们描述了用于癌症药物诱导的细胞毒性实时分析的微型,介电泳(DEP)细胞固定平台的开发和应用。微电极阵列被设计为在相对的微电极之间形成的强电场的三角形区域产生微弱的电热涡流,从而支持有效的药物混合和快速的细胞固定。我们将该技术应用于造血肿瘤细胞的动态分析,由于其在图像采集过程中移位,对实时成像提出了特殊的挑战。本研究旨在为使用细胞渗透性标记物的实时标记在DEP芯片上进行基于细胞的加速分析提供全面的机理依据。在这种情况下,我们提供了有关DEP领域中存活细胞与垂死细胞的复杂行为的数据,并探讨了DEP领域对细胞对抗癌药反应和总体生物测定性能的影响。结果表明,简单的DEP细胞固定技术可轻松用于造血癌细胞中研究药物的动态分析。当暴露于治疗药物时,这种能力对于研究患者衍生的癌细胞的结局特别重要,因为这些细胞通常很少见,并且难以收集,纯化和固定。

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