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Functional Micro-Imaging of Soft and Hard Tissue using Synchrotron Light

机译:同步光对软组织和硬组织的功能微成像

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In current biological and biomedical research, quantitative endpoints have become an important factor of success. Classically, such endpoints were investigated with 2D imaging, which is usually destructive and the 3D character of tissue gets lost. 3D imaging has gained in importance as a tool for both, qualitative and quantitative assessment of biological systems. In this context synchrotron radiation based tomography has become a very effective tool for opaque 3D tissue systems. Cell cultures and adherent scaffolds are visualized in 3D in a hydrated environment, even uncovering the shape of individual cells. Advanced morphometry allows to characterize the differences between the cell cultures of two distinct phenotypes. Moreover, a new device is presented enabling the 3D investigation of trabecular bone under mechanical load in a time-lapsed fashion. Using the highly brilliant X-rays from a synchrotron radiation source, bone microcracks and an indication for un-cracked ligament bridging are uncovered. 3D microcrack analysis proves that the classification of microcracks from 2D images is ambiguous. Fatigued bone was found to fail in burst-like fashion, whereas non-fatigued bone exhibited a distinct failure band. Additionally, a higher increase in microcrack volume was detected in fatigued in comparison to non-fatigued bone. The developed technologies prove to be very effective tools for advanced 3D imaging of both hard and soft tissue.
机译:在当前的生物学和生物医学研究中,定量终点已成为成功的重要因素。传统上,这些端点是通过2D成像进行研究的,这通常具有破坏性,并且组织的3D特性会丢失。 3D成像作为对生物系统进行定性和定量评估的工具,已变得越来越重要。在这种情况下,基于同步辐射的层析成像已成为用于不透明3D组织系统的非常有效的工具。细胞培养物和粘附的支架可以在水合环境中以3D可视化,甚至可以揭露单个细胞的形状。高级形态计量学可以表征两种不同表型的细胞培养之间的差异。此外,提出了一种新设备,该设备能够以延时的方式对机械载荷下的小梁骨进行3D检查。使用来自同步加速器辐射源的高强度X射线,可以发现骨微裂纹和韧带桥未裂的迹象。 3D微裂纹分析证明,从2D图像进行的微裂纹分类不明确。发现疲劳骨以破裂状破裂,而未疲劳骨表现出明显的破裂带。另外,与未疲劳的骨骼相比,疲劳中的微裂纹体积增加了。事实证明,开发的技术是用于硬组织和软组织的高级3D成像的非常有效的工具。

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