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Long-term, time-lapse, multi-modal microscopy for tracking cell dynamics in live tissue

机译:长期,延时,多模态显微镜,用于跟踪直播组织中的细胞动态

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High speed intravital microscopy has emerged as an essential tool for studying cellular dynamics in live tissue. A limitation of this technique, however, is that the timescale that a sample can be continuously imaged is limited by practical considerations to several hours. Long term observation of live tissue is of great interest for a variety of research areas. We present methods for observing long term cellular dynamics in live tissue based on three-dimensional registration of time-lapse intravital microscopy images. For these experiments we utilized a custom multimodal microscope that allows simultaneous and co-registered acquisition of optical coherence (OCM) and multiphoton (MPM) microscopy images. OCM allows the structure of a sample to be visualized based on backscattered light while MPM excited fluorescence allows individual cells and cell function to be visualized. The OCM images of tissue structure are used to register data sets taken at different., time points. The transformations of the OCM images are applied to MPM images to determine the migration of cell populations. This method of image registration is applied to in vivo tracking of bone-marrow derived GFP-labeled stem cells in mouse skin following bone marrow transplants from GFP donors into species-matched wildtype hosts. The use of three-dimensional image registration of time-lapse microscopy images enables tracking these cells after local cutaneous injury, and for investigating the role of skin stem cells in wound healing.
机译:高速流体显微镜表现为研究活组织中的蜂窝动力学的基本工具。然而,这种技术的限制是样品可以连续成像的时间尺度受到实际考虑到几个小时的限制。长期观察活组织对各种研究领域具有很大的兴趣。我们提出了基于时间流逝脊柱状显微镜图像的三维登记观察Live组织长期蜂窝动态的方法。对于这些实验,我们利用了一种自定义多模峰显微镜,其允许同时和共同登记的光学相干(OCM)和多光子(MPM)显微镜图像获取。 OCM允许基于反向散射光进行可视化的样本的结构,而MPM激发荧光允许可视化单个电池和细胞功能。组织结构的OCM图像用于注册不同的数据集。,时间点。将OCM图像的变换应用于MPM图像以确定小区群体的迁移。这种图像配准方法应用于在从GFP供体中从GFP供体中的骨髓移植到物种匹配的野生型宿主之后,在小鼠皮肤中衍生的GFP标记的干细胞的体内跟踪。使用时间流失显微镜图像的三维图像配准可以在局部皮肤损伤后跟踪这些细胞,并研究皮肤干细胞在伤口愈合中的作用。

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