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三维成像和整个卵巢和睾丸的重建:生殖科学家的新前沿。

Three-dimensional imaging and reconstruction of the whole ovary and testis: a new frontier for the reproductive scientist.

机构信息

Laboratory of Developmental Biology, Department of Biology and Biotechnology 'Lazzaro Spallanzani', University of Pavia, 27100 Pavia, Italy.

Center for Health Technologies, University of Pavia, Pavia 27100, Italy.

出版信息

Mol Hum Reprod. 2021 Feb 27;27(3). doi: 10.1093/molehr/gaab007.

Abstract

The 3D functional reconstruction of a whole organ or organism down to the single cell level and to the subcellular components and molecules is a major future scientific challenge. The recent convergence of advanced imaging techniques with an impressively increased computing power allowed early attempts to translate and combine 2D images and functional data to obtain in-silico organ 3D models. This review first describes the experimental pipeline required for organ 3D reconstruction: from the collection of 2D serial images obtained with light, confocal, light-sheet microscopy or tomography, followed by their registration, segmentation and subsequent 3D rendering. Then, we summarise the results of investigations performed so far by applying these 3D image analyses to the study of the female and male mammalian gonads. These studies highlight the importance of working towards a 3D in-silico model of the ovary and testis as a tool to gain insights into their biology during the phases of differentiation or adulthood, in normal or pathological conditions. Furthermore, the use of 3D imaging approaches opens to key technical improvements, ranging from image acquisition to optimisation and development of new processing tools, and unfolds novel possibilities for multidisciplinary research.

摘要

将整个器官或生物体从单细胞水平到亚细胞成分和分子进行 3D 功能重建,是未来科学的一个重大挑战。最近,先进的成像技术与令人印象深刻的计算能力的融合,使得早期尝试将 2D 图像和功能数据进行转化和组合,以获得计算机器官 3D 模型成为可能。本文首先描述了器官 3D 重建所需的实验流程:从采集 2D 连续图像开始,这些图像可以通过光、共聚焦、光片显微镜或断层扫描获得,然后对其进行配准、分割和后续的 3D 渲染。接下来,我们总结了迄今为止通过将这些 3D 图像分析应用于研究哺乳动物雌性和雄性性腺所取得的研究结果。这些研究强调了构建卵巢和睾丸的 3D 计算机模型的重要性,因为它是研究其在分化或成年期、正常或病理条件下生物学特性的工具。此外,3D 成像方法的使用为从图像采集到优化和开发新的处理工具等各个方面带来了关键的技术改进,并为跨学科研究展开了新的可能性。

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