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Light scattering characterization of single biological cells in a microfluidic cytometer

机译:微流式细胞仪中单个生物细胞的光散射特性

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The characterization of single biological cells in a microfluidic flow by using a 2D light scattering microfluidic cytometric technique is described. Laser light is coupled into a microfluidic cytometer via an optical fiber to illuminate a single scatterer in a fluidic flow. The 2D light scattering patterns are obtained by using a charge-coupled device (CCD) detector. The system is tested by using standard polystyrene beads of 4 urn and 9.6 urn in diameter, and the bead experimental results agree well with 1D Mie theory simulation results. Experiments on yeast cells are performed using the microfluidic cytometer. Cell results are studied by finite-difference time-domain (FDTD) method, which can simulate light scattering from non-homogeneous cells. For example, a complex biological cell model with inner mitochondrial distribution is studied by FDTD in this paper. Considering the yeast cell size variations, the yeast cell 2D scatter patterns agree well with the FDTD 2D simulation patterns. The system is capable of obtaining 2D side scatter patterns from a single biological cell which may contain rich information on the biological cell inner structures. The integration of light scattering, microfluidics and fiber optics described here may ultimately allow the development of a lab-on-chip cytometer for label-free detection of diseases at a single cell level.
机译:描述了通过使用二维光散射微流体细胞术技术对微流体流中单个生物细胞的表征。激光通过光纤耦合到微流式细胞仪中,以照亮流体流中的单个散射体。二维光散射图案是通过使用电荷耦合器件(CCD)检测器获得的。该系统通过使用直径为4微米和9.6微米的标准聚苯乙烯珠进行测试,并且珠的实验结果与一维Mie理论模拟结果非常吻合。使用微流式细胞仪对酵母细胞进行实验。通过有限差分时域(FDTD)方法研究细胞结果,该方法可以模拟来自非均匀细胞的光散射。例如,本文通过FDTD研究了具有内部线粒体分布的复杂生物细胞模型。考虑到酵母细胞大小的变化,酵母细胞2D散射模式与FDTD 2D模拟模式非常吻合。该系统能够从单个生物细胞获得2D侧向散射图,其中可能包含有关生物细胞内部结构的丰富信息。此处描述的光散射,微流控和光纤的集成最终可以允许开发芯片实验室细胞仪,以在单个细胞水平上无标记地检测疾病。

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