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Customizable live-cell imaging chambers for multimodal and multiplex fluorescence microscopy

机译:用于多模式和多重荧光显微镜的可定制的实时细胞成像室

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摘要

Using multiple imaging modalities while performing independent experiments in parallel can greatly enhance the throughput of microscopy-based research, but requires the provision of appropriate experimental conditions in a format that meets the optical requirements of the microscope. Although customized imaging chambers can meet these challenges, the difficulty of manufacturing custom chambers and the relatively high cost and design inflexibility of commercial chambers has limited the adoption of this approach. Herein, we demonstrate the use of 3D printing to produce inexpensive, customized, live-cell imaging chambers that are compatible with a range of imaging modalities, including super-resolution microscopy. In this approach, biocompatible plastics are used to print imaging chambers designed to meet the specific needs of an experiment, followed by adhesion of the printed chamber to a glass coverslip, producing a chamber that is impermeant to liquids and that supports the growth and imaging of cells over multiple days. This approach can also be used to produce moulds for casting microfluidic devices made of polydimethylsiloxane. The utility of these chambers is demonstrated using designs for multiplex microscopy, imaging under shear, chemotaxis, and general cellular imaging. Together, this approach represents an inexpensive yet highly customizable approach for producing imaging chambers that are compatible with modern microscopy techniques.
机译:在并行执行独立实验的同时使用多重成像模态可以大大提高基于显微镜的研究的吞吐量,而是需要以满足显微镜光学要求的格式提供适当的实验条件。虽然定制的成像室可以满足这些挑战,但是制造定制室的难度和商业室的相对较高的成本和设计不灵活性有限采用这种方法。在此,我们证明了3D打印的使用以生产与一系列成像方式兼容的廉价,定制的活细胞成像室,包括超分辨率显微镜。在这种方法中,生物相容性塑料用于打印设计成符合实验的特定需求的成像室,然后将印刷室与玻璃盖玻片的粘附,产生对液体不普美的腔室,并且支持生长和成像细胞超过多天。该方法还可用于生产用于铸造由聚二甲基硅氧烷制成的微流体装置的模具。使用用于多路复用显微镜的设计,剪切,趋化性和通用细胞成像的设计进行了说明这些腔室的效用。这种方法在一起表示一种生产与现代显微镜技术兼容的成像室的廉价且高度可定制的方法。

著录项

  • 来源
    《Biochemistry and Cell Biology》 |2020年第5期|共12页
  • 作者单位

    Univ Western Ontario Dept Microbiol &

    Immunol Schulich Sch Med &

    Dent London ON N6A 5C1 Canada;

    Univ Western Ontario Dept Microbiol &

    Immunol Schulich Sch Med &

    Dent London ON N6A 5C1 Canada;

    Univ Western Ontario Dept Microbiol &

    Immunol Schulich Sch Med &

    Dent London ON N6A 5C1 Canada;

    Univ Western Ontario Dept Microbiol &

    Immunol Schulich Sch Med &

    Dent London ON N6A 5C1 Canada;

    Univ Western Ontario Dept Microbiol &

    Immunol Schulich Sch Med &

    Dent London ON N6A 5C1 Canada;

    Univ Western Ontario Dept Microbiol &

    Immunol Schulich Sch Med &

    Dent London ON N6A 5C1 Canada;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
  • 关键词

    3D printing; microscopy; live-cell imaging; phagocytosis; chemotaxis;

    机译:3D打印;显微镜;活细胞成像;吞噬作用;趋化性;

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