Image Analysis Hub, C2RT / DTPS, Institut Pasteur, Paris, France.
Present Address: Imaging Core Facility, Biozentrum, University of Basel, Basel, Switzerland.
BMC Biol. 2021 Jul 2;19(1):136. doi: 10.1186/s12915-021-01037-w.
Quantitative imaging of epithelial tissues requires bioimage analysis tools that are widely applicable and accurate. In the case of imaging 3D tissues, a common preprocessing step consists of projecting the acquired 3D volume on a 2D plane mapping the tissue surface. While segmenting the tissue cells is amenable on 2D projections, it is still very difficult and cumbersome in 3D. However, for many specimen and models used in developmental and cell biology, the complex content of the image volume surrounding the epithelium in a tissue often reduces the visibility of the biological object in the projection, compromising its subsequent analysis. In addition, the projection may distort the geometry of the tissue and can lead to strong artifacts in the morphology measurement.
Here we introduce a user-friendly toolbox built to robustly project epithelia on their 2D surface from 3D volumes and to produce accurate morphology measurement corrected for the projection distortion, even for very curved tissues. Our toolbox is built upon two components. LocalZProjector is a configurable Fiji plugin that generates 2D projections and height-maps from potentially large 3D stacks (larger than 40 GB per time-point) by only incorporating signal of the planes with local highest variance/mean intensity, despite a possibly complex image content. DeProj is a MATLAB tool that generates correct morphology measurements by combining the height-map output (such as the one offered by LocalZProjector) and the results of a cell segmentation on the 2D projection, hence effectively deprojecting the 2D segmentation in 3D. In this paper, we demonstrate their effectiveness over a wide range of different biological samples. We then compare its performance and accuracy against similar existing tools.
We find that LocalZProjector performs well even in situations where the volume to project also contains unwanted signal in other layers. We show that it can process large images without a pre-processing step. We study the impact of geometrical distortions on morphological measurements induced by the projection. We measured very large distortions which are then corrected by DeProj, providing accurate outputs.
上皮组织的定量成像需要广泛适用且准确的生物图像分析工具。在对 3D 组织进行成像时,常见的预处理步骤包括将获取的 3D 体积投影到映射组织表面的 2D 平面上。虽然在 2D 投影上可以对组织细胞进行分割,但在 3D 中仍然非常困难和繁琐。然而,对于发育和细胞生物学中使用的许多标本和模型,组织中上皮周围的图像体积的复杂内容往往会降低生物对象在投影中的可见性,从而影响其后续分析。此外,投影可能会扭曲组织的几何形状,并导致形态测量中的强烈伪影。
在这里,我们介绍了一个用户友好的工具箱,该工具箱可从 3D 体积中稳健地将上皮组织投影到其 2D 表面上,并生成针对投影失真进行了校正的准确形态测量值,即使对于非常弯曲的组织也是如此。我们的工具箱基于两个组件构建。LocalZProjector 是一个可配置的 Fiji 插件,它可以通过仅合并具有局部最高方差/平均强度的平面的信号,生成来自潜在大 3D 堆栈(每次时间点大于 40GB)的 2D 投影和高度图,尽管图像内容可能很复杂。DeProj 是一个 MATLAB 工具,它通过结合高度图输出(例如 LocalZProjector 提供的输出)和 2D 投影上的细胞分割结果,生成正确的形态测量值,从而有效地将 2D 分割反投影到 3D 中。在本文中,我们展示了其在广泛的不同生物样本中的有效性。然后,我们将其性能和准确性与类似的现有工具进行了比较。
我们发现,即使在要投影的体积中还包含其他层中的不需要的信号的情况下,LocalZProjector 也能很好地执行。我们表明它可以在没有预处理步骤的情况下处理大图像。我们研究了投影引起的形态测量值的几何变形的影响。我们测量了非常大的变形,然后由 DeProj 进行校正,从而提供了准确的输出。