High-resolution cell manipulation for longstanding load on red blood cells

C. Tsai, M. Horade, Hiroaki Ito, M. Kaneko, Motomu Tanaka
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引用次数: 2

Abstract

A high-resolution cell manipulation system is presented for investigating red blood cell deformation under long-standing load in this paper. Because the low Reynolds number in microfluidic system, cell position can be manipulated by controlling the flow in a microchannel. A high-speed vision system is embedded in the system for providing cell present position as the feedback signal for the controller while a syringe pump actuated by a piezoelectric actuator is employed for flow control in the channel. The system is utilized for applying longstanding load on human red blood cells. The longstanding load is generated by manipulating a cell into a constriction channel where the cross-sectional size is smaller than the size of the cell. The cell has to deform due to the geometrical constraints of the constriction. Both the system performance and cell response to longstanding load have been evaluated. The manipulation system successfully achieves cell positioning as accurate as 0.24 μm while red blood cells are found always exponentially shrink with respect to time, and an average shrinkage of 1.82μm in 5 minutes is observed. Details of system construction and discussion on the cell response are presented.
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红细胞长期负荷的高分辨率细胞操作
本文提出了一种高分辨率的细胞操作系统,用于研究红细胞在长期负荷下的变形。由于微流体系统的低雷诺数,可以通过控制微通道内的流动来控制细胞的位置。在该系统中嵌入高速视觉系统,用于为控制器提供细胞当前位置作为反馈信号,而由压电驱动器驱动的注射泵用于通道内的流量控制。该系统用于对人体红细胞施加长期负荷。长期负载是通过操纵细胞进入一个收缩通道产生的,其中截面尺寸小于细胞的尺寸。由于收缩的几何约束,细胞必须变形。系统性能和细胞对长期负载的响应都进行了评估。该操作系统成功实现了精确到0.24 μm的细胞定位,而红细胞随时间呈指数级收缩,平均5分钟收缩1.82μm。详细介绍了系统的结构和对细胞响应的讨论。
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