4.7 Article

High Resolution Episcopic Microscopy for Qualitative and Quantitative Data in Phenotyping Altered Embryos and Adult Mice Using the New Histo3D System

期刊

BIOMEDICINES
卷 9, 期 7, 页码 -

出版社

MDPI
DOI: 10.3390/biomedicines9070767

关键词

3D imaging; high-resolution episcopic microscopy; phenotyping; microanatomy; quantification

资金

  1. National Centre for Scientific Research (CNRS)
  2. French National Institute of Health and Medical Research (INSERM)
  3. University of Strasbourg (Unistra)
  4. French state funds through the Agence Nationale de la Recherche [ANR-10-IDEX-0002-02, ANR-10-LABX-0030-INRT, ANR-10-INBS-07]

向作者/读者索取更多资源

3D imaging in animal models, particularly with high-resolution HREM technology, allows for the identification and quantification of structural morphological changes, enhancing the visualization and analysis of organ systems. The data generated through this technique can be used for novel computational analysis, providing accurate quantification and comparison of individual embryos. The HREM prototype described in this study showcases its potential for phenotyping experimental cohorts and comparing structure volumes in various stages of development.
3D imaging in animal models, during development or in adults, facilitates the identification of structural morphological changes that cannot be achieved with traditional 2D histological staining. Through the reconstruction of whole embryos or a region-of-interest, specific changes are better delimited and can be easily quantified. We focused here on high-resolution episcopic microscopy (HREM), and its potential for visualizing and quantifying the organ systems of normal and genetically altered embryos and adult organisms. Although the technique is based on episcopic images, these are of high resolution and are close to histological quality. The images reflect the tissue structure and densities revealed by histology, albeit in a grayscale color map. HREM technology permits researchers to take advantage of serial 2D aligned stacks of images to perform 3D reconstructions. Three-dimensional visualization allows for an appreciation of topology and morphology that is difficult to achieve with classical histological studies. The nature of the data lends itself to novel forms of computational analysis that permit the accurate quantitation and comparison of individual embryos in a manner that is impossible with histology. Here, we have developed a new HREM prototype consisting of the assembly of a Leica Biosystems Nanocut rotary microtome with optics and a camera. We describe some examples of applications in the prenatal and adult lifestage of the mouse to show the added value of HREM for phenotyping experimental cohorts to compare and quantify structure volumes. At prenatal stages, segmentations and 3D reconstructions allowed the quantification of neural tissue and ventricular system volumes of normal brains at E14.5 and E16.5 stages. 3D representations of normal cranial and peripheric nerves at E15.5 and of the normal urogenital system from stages E11.5 to E14.5 were also performed. We also present a methodology to quantify the volume of the atherosclerotic plaques of ApoE(tm1Unc/tm1Unc) mutant mice and illustrate a 3D reconstruction of knee ligaments in adult mice.

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