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相关三维X射线组织学(3D-XRH)作为一种量化哺乳动物胎盘结构的工具。

Correlative three-dimensional X-ray histology (3D-XRH) as a tool for quantifying mammalian placental structure.

作者信息

Laundon Davis, Lane Thomas, Katsamenis Orestis L, Norman Jeanette, Brewer Lois, Harris Shelley E, Basford Philip J, Shotton Justine, Free Danielle, Constable-Dakeyne Georgina, Gostling Neil J, Chavatte-Palmer Pascale, Lewis Rohan M

机构信息

The Institute of Developmental Sciences, Human Development and Health, Faculty of Medicine, University of Southampton, Southampton, SO16 6YD, UK; Institute for Life Sciences, University of Southampton, University Rd, Highfield, Southampton, SO17 1BJ, UK.

School of Biological Sciences, Faculty of Environmental and Life Sciences, University of Southampton, University Rd, Highfield, Southampton, SO17 1BJ, UK.

出版信息

Placenta. 2025 Jun 13;166:145-153. doi: 10.1016/j.placenta.2024.07.312. Epub 2024 Jul 31.

Abstract

Mammalian placentas exhibit unparalleled structural diversity, despite sharing a common ancestor and principal functions. The bulk of structural studies in placental research has used two-dimensional (2D) histology sectioning, allowing significant advances in our understanding of mammalian placental structure. However, 2D histology sectioning may be limited if it does not provide accurate information of three-dimensional (3D) tissue architecture. Here, we propose correlative 3D X-ray histology (3D-XRH) as a tool with great potential for resolving mammalian placental structures. 3D-XRH involves scanning a formaldehyde-fixed, paraffin embedded (FFPE) tissue block with 3D X-ray microscopy (microCT) prior to histological sectioning to generate a 3D image volume of the embedded tissue piece. The subsequent 2D histology sections can then be correlated back into the microCT image volume to couple histology staining (or immunolabelling) with 3D tissue architecture. 3D-XRH is non-destructive and requires no additional sample preparation than standard FFPE histology sectioning, however the image volume provides 3D morphometric data and can be used to guide microtomy. As such, 3D-XRH introduces additional information to standard histological workflows with minimal effort or disruption. Using primary examples from porcine, bovine, equine, and canine placental samples, we demonstrate the application of 3D-XRH to quantifying placental structure as well as discussing the limitations and future directions of the methodology. The wealth of information derived from 2D histological sectioning in the biomedical, veterinary, and comparative reproductive sciences provides a rich foundation from which 3D-XRH can build on to advance the study of placental structure and function.

摘要

尽管哺乳动物的胎盘拥有共同的祖先和主要功能,但它们展现出了无与伦比的结构多样性。胎盘研究中的大部分结构研究都采用了二维(2D)组织学切片技术,这使我们对哺乳动物胎盘结构的理解取得了重大进展。然而,如果二维组织学切片不能提供三维(3D)组织结构的准确信息,那么它可能存在局限性。在此,我们提出将相关三维X射线组织学(3D-XRH)作为一种在解析哺乳动物胎盘结构方面具有巨大潜力的工具。3D-XRH包括在组织学切片之前,用三维X射线显微镜(microCT)扫描经甲醛固定、石蜡包埋(FFPE)的组织块,以生成包埋组织块的三维图像体积。随后的二维组织学切片可以再关联回microCT图像体积,从而将组织学染色(或免疫标记)与三维组织结构相结合。3D-XRH是非破坏性的,除了标准的FFPE组织学切片外,不需要额外的样品制备,然而该图像体积提供了三维形态测量数据,可用于指导切片。因此,3D-XRH只需付出最小的努力或造成最小的干扰,就能为标准组织学工作流程引入额外信息。我们以猪、牛、马和犬胎盘样本为例,展示了3D-XRH在量化胎盘结构方面的应用,并讨论了该方法的局限性和未来发展方向。在生物医学、兽医学和比较生殖科学领域,二维组织学切片所提供的丰富信息为3D-XRH奠定了坚实基础,使其能够在此基础上推进对胎盘结构和功能的研究。

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