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Identification of cells using morphological information of bright field/fluorescent multi-imaging flow cytometer images

机译:使用明场/荧光多成像流式细胞仪图像的形态学信息鉴定细胞

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摘要

We have examined the ability of real-time simultaneous measurement of bright field/fluorescent images of cells in an on-chip bright field/ fluorescent multi-imaging flow cytometer system. The system consists of (1) a disposable microfluidic hydrofocusing flow cytometry chip, (2) an optical microscopy module with splittable bright field/fluorescent multi-imaging optics, and (3) a real-time Image-processing module with a 200 images/s high-speed digital camera. In the double "Y" shape three-way-inlet microfluidic pathways fabricated in the poly(dimethylsiloxane) (PDMS) microchip, we applied fluorescent polystyrene standard beads and HeLa cells stained with fluorescent dye, Hoechst 33258, and measured the z-axis (depth) dependence of the morphological index; the intensity profile of cells and nuclei. Then, we measured the tendency of the blur of bright field/fluorescent images in the simultaneous measurement of bright field/fluorescent images on a single light-receiving surface, and found that their blurs were similar within the same range of the depth of the microfluidic pathway for small cell cluster measurement, 25 μm. Hence, the fluorescent images were applied as supporting information of the bright field images of cell clusters at the focal plane for the cell number counting. The result indicates the potential of precise identification of various types of cells by simultaneous morphological analysis of bright field and fluorescent images distributed with a single camera in a wider depth of microfluidic chip as a substitute for conventional biomarker detection.
机译:我们已经检查了在片上明场/荧光多成像流式细胞仪系统中实时同步测量细胞明场/荧光图像的能力。该系统由(1)一次性微流水聚焦流式细胞仪芯片,(2)具有可拆分明场/荧光多成像光学器件的光学显微镜模块和(3)具有200张图像/的实时图像处理模块组成的高速数码相机。在通过聚二甲基硅氧烷(PDMS)微芯片制造的双“ Y”形三通入口微流路中,我们应用了荧光聚苯乙烯标准珠和被荧光染料Hoechst 33258染色的HeLa细胞,并测量了z轴(深度)对形态指标的依赖性;细胞和细胞核的强度分布。然后,我们在单个光接收表面上同时测量明场/荧光图像时,测量了明场/荧光图像的模糊趋势,发现它们的模糊在微流体深度的相同范围内相似。小细胞簇测量的最大路径为25μm。因此,荧光图像被用作在焦点平面处的细胞簇的明场图像的支持信息,以进行细胞计数。结果表明,通过同时用单个摄像头在更宽深度的微流控芯片中分布的明场和荧光图像进行形态学分析,可以精确鉴定各种类型的细胞,从而替代传统的生物标记物检测。

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  • 来源
    《Japanese journal of applied physics》 |2014年第6s期|06JL03.1-06JL03.4|共4页
  • 作者单位

    Kanagawa Academy of Science and Technology, Kawasaki 213-0012, Japan;

    Kanagawa Academy of Science and Technology, Kawasaki 213-0012, Japan;

    Institute of Biomaterials and Bioengineering, Tokyo Medical and Dental University, Chiyoda, Tokyo 101-0062, Japan;

    Kanagawa Academy of Science and Technology, Kawasaki 213-0012, Japan;

    Kanagawa Academy of Science and Technology, Kawasaki 213-0012, Japan;

    Kanagawa Academy of Science and Technology, Kawasaki 213-0012, Japan;

    Kanagawa Academy of Science and Technology, Kawasaki 213-0012, Japan,Institute of Biomaterials and Bioengineering, Tokyo Medical and Dental University, Chiyoda, Tokyo 101-0062, Japan;

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