Guo Jinhong, Pui Tze Sian, Ban Yong-Ling, Rahman Abdur Rub Abdur, Kang Yuejun
IEEE Trans Biomed Eng. 2013 Dec;60(12):3269-75. doi: 10.1109/TBME.2013.2278014. Epub 2013 Aug 15.
Conventional Coulter counters have been introduced as an important tool in biological cell assays since several decades ago. Recently, the emerging portable Coulter counter has demonstrated its merits in point of care diagnostics, such as on chip detection and enumeration of circulating tumor cells (CTC). The working principle is based on the cell translocation time and amplitude of electrical current change that the cell induces. In this paper, we provide an analysis of a Coulter counter that evaluates the hydrodynamic and electrokinetic properties of polystyrene microparticles in a microfluidic channel. The hydrodynamic force and electrokinetic force are concurrently analyzed to determine the translocation time and the electrical current pulses induced by the particles. Finally, we characterize the chip performance for CTC detection. The experimental results validate the numerical analysis of the microfluidic chip. The presented model can provide critical insight and guidance for developing micro-Coulter counter for point of care prognosis.
几十年前,传统的库尔特计数器就已作为生物细胞检测中的一种重要工具被引入。最近,新兴的便携式库尔特计数器在即时诊断方面展现出了其优势,比如在芯片上检测和计数循环肿瘤细胞(CTC)。其工作原理基于细胞诱导产生的电流变化的细胞迁移时间和幅度。在本文中,我们对一种库尔特计数器进行了分析,该计数器用于评估微流控通道中聚苯乙烯微颗粒的流体动力学和电动特性。同时分析流体动力和电动动力,以确定颗粒诱导产生的迁移时间和电流脉冲。最后,我们对芯片用于CTC检测的性能进行了表征。实验结果验证了微流控芯片的数值分析。所提出的模型可为开发用于即时诊断预后的微型库尔特计数器提供关键的见解和指导。