首页> 外文期刊>American Journal of Pathology: Official Publication of the American Association of Pathologists >Laser scanning-based tissue autofluorescence/fluorescence imaging (LS-TAFI), a new technique for analysis of microanatomy in whole-mount tissues
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Laser scanning-based tissue autofluorescence/fluorescence imaging (LS-TAFI), a new technique for analysis of microanatomy in whole-mount tissues

机译:基于激光扫描的组织自发荧光/荧光成像(LS-TAFI),一种分析整个组织组织中微解剖结构的新技术

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摘要

Intact organ structure is essential in maintaining tissue specificity and cellular differentiation. Small physiological or genetic variations lead to changes in microanatomy that, if persistent, could have functional consequences and may easily be masked by the heterogeneity of tissue anatomy. Current imaging techniques rely on histological, two-dimensional sections requiring sample manipulation that are essentially two dimensional. We have developed a method for three-dimensional imaging of whole-mount, unsectioned mammalian tissues to elucidate subtle and detailed micro- and macroanatomies in adult organs and embryos. We analyzed intact or dissected organ whole mounts with laser scanning-based tissue autofluorescence/fluorescence imaging (LS-TAFI). We obtained clear visualization of microstructures within murine mammary glands and mammary tumors and other organs without the use of immunostaining and without probes or fluorescent reporter genes. Combining autofluorescence with reflected light signals from chromophore-stained tissues allowed identification of individual cells within three-dimensional structures of whole-mounted organs. This technique could be useful for rapid diagnosis of human clinical samples and possibly the effect of subtle variations such as low dose radiation.
机译:完整的器官结构对于维持组织特异性和细胞分化至关重要。微小的生理或遗传变异会导致微观解剖结构发生变化,如果持续存在,可能会产生功能性后果,并且很容易被组织解剖结构的异质性掩盖。当前的成像技术依赖于组织学上的二维部分,其需要基本上是二维的样品处理。我们已经开发出了一种用于对未镶嵌的整个哺乳动物组织进行三维成像的方法,以阐明成年器官和胚胎的细微和详细的微观和宏观解剖结构。我们用基于激光扫描的组织自发荧光/荧光成像(LS-TAFI)分析了完整或解剖的器官整个坐骑。我们获得了清晰的小鼠乳腺和乳腺肿瘤及其他器官内微结构的可视化,而无需使用免疫染色,也无需探针或荧光报告基因。将自发荧光与发色团染色组织的反射光信号相结合,可以鉴定出整个安装器官的三维结构内的单个细胞。该技术可用于快速诊断人类临床样品,并可能对细微变化(例如低剂量辐射)产生影响。

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