Winfree Seth, Ferkowicz Michael J, Dagher Pierre C, Kelly Katherine J, Eadon Michael T, Sutton Timothy A, Markel Troy A, Yoder Mervin C, Dunn Kenneth W, El-Achkar Tarek M
Division of Nephrology, Department of Medicine, Indiana University School of Medicine, Indianapolis, Ind; Department of Cellular & Integrative Physiology, Indiana University School of Medicine, Indianapolis, Ind; Indiana Center for Biological Microscopy, Indianapolis, Ind.
Department of Pediatrics, Indiana University School of Medicine, Indianapolis, Ind.
Transl Res. 2017 Nov;189:1-12. doi: 10.1016/j.trsl.2017.07.006. Epub 2017 Jul 22.
Recent developments in automated optical sectioning microscope systems have enabled researchers to conduct high resolution, three-dimensional (3D) microscopy at the scale of millimeters in various types of tissues. This powerful technology allows the exploration of tissues at an unprecedented level of detail, while preserving the spatial context. By doing so, such technology will also enable researchers to explore cellular and molecular signatures within tissue and correlate with disease course. This will allow an improved understanding of pathophysiology and facilitate a precision medicine approach to assess the response to treatment. The ability to perform large-scale imaging in 3D cannot be realized without the widespread availability of accessible quantitative analysis. In this review, we will outline recent advances in large-scale 3D imaging and discuss the available methodologies to perform meaningful analysis and potential applications in translational research.
自动光学切片显微镜系统的最新进展使研究人员能够在各种类型的组织中,以毫米级尺度进行高分辨率的三维(3D)显微镜检查。这项强大的技术能够以前所未有的细节水平探索组织,同时保留空间背景。通过这样做,该技术还将使研究人员能够探索组织内的细胞和分子特征,并与疾病进程相关联。这将有助于更好地理解病理生理学,并促进采用精准医学方法来评估治疗反应。如果没有广泛可用的可访问定量分析,就无法实现大规模3D成像的能力。在这篇综述中,我们将概述大规模3D成像的最新进展,并讨论进行有意义分析的可用方法以及在转化研究中的潜在应用。