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Time-lapsed large-volume high-resolution intravital imaging for tissue-wide analysis of single cell dynamics

机译:延时大体积高分辨率活体成像可对全组织进行单细胞动力学分析

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摘要

Pathologists rely on microscopy to diagnose disease states in tissues and organs. They utilize both high-resolution, high-magnification images to interpret the staining and morphology of individual cells, as well as low-magnification overviews to give context and location to these cells. Intravital imaging is a powerful technique for studying cells and tissues in their native, live environment and can yield sub-cellular resolution images similar to those used by pathologists. However, technical limitations prevent the straightforward acquisition of low-magnification images during intravital imaging, and they are hence not typically captured. The serial acquisition, mosaicking, and stitching together of many high-resolution, high-magnification fields of view is a technique that overcomes these limitations in fixed and ex vivo tissues. The technique however, has not to date been widely applied to intravital imaging as movements caused by the living animal induce image distortions that are difficult to compensate for computationally. To address this, we have developed techniques for the stabilization of numerous tissues, including extremely compliant tissues, that have traditionally been extremely difficult to image. We present a novel combination of these stabilization techniques with mosaicked and stitched intravital imaging, resulting in a process we call Large-Volume High-Resolution Intravital Imaging (LVHR-IVI). The techniques we present are validated and make large volume intravital imaging accessible to any lab with a multiphoton microscope.
机译:病理学家依靠显微镜来诊断组织和器官的疾病状态。他们利用高分辨率,高倍率的图像来解释单个细胞的染色和形态,并利用低倍率的概观为这些细胞提供背景和位置。活体成像是研究自然和活环境中细胞和组织的有力技术,可以产生类似于病理学家使用的亚细胞分辨率图像。但是,技术局限性阻止了在活体成像期间直接获取低倍率图像,因此通常无法捕获它们。许多高分辨率,高放大倍率视场的连续采集,镶嵌和拼接是一种克服了固定和离体组织中这些限制的技术。然而,由于活体动物引起的运动引起难以通过计算补偿的图像失真,因此该技术迄今尚未广泛应用于活体成像。为了解决这个问题,我们开发了稳定许多组织的技术,包括传统上极难成像的极其顺应的组织。我们介绍了这些稳定技术与镶嵌式和缝合式活体成像的新颖组合,从而形成了我们称为大体积高分辨率活体成像(LVHR-IVI)的过程。我们介绍的技术已经过验证,并可以使用多光子显微镜在任何实验室中进行大体积活体成像。

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