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High-Resolution X-Ray Tomography: A 3D Exploration Into the Skeletal Architecture in Mouse Models Submitted to Microgravity Constraints

机译:高分辨率X射线断层扫描:提交给微重力约束的鼠标模型中骨骼结构的3D探索

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摘要

Bone remodeling process consists in a slow building phase and in faster resorption with the objective to maintain a functional skeleton locomotion to counteract the Earth gravity. Thus, during spaceflights, the skeleton does not act against gravity, with a rapid decrease of bone mass and density, favoring bone fracture. Several studies approached the problem by imaging the bone architecture and density of cosmonauts returned by the different spaceflights. However, the weaknesses of the previously reported studies was two-fold: on the one hand the research suffered the small statistical sample size of almost all human spaceflight studies, on the other the results were not fully reliable, mainly due to the fact that the observed bone structures were small compared with the spatial resolution of the available imaging devices. The recent advances in high-resolution X-ray tomography have stimulated the study of weight-bearing skeletal sites by novel approaches, mainly based on the use of the mouse and its various strains as an animal model, and sometimes taking advantage of the synchrotron radiation support to approach studies of 3D bone architecture and mineralization degree mapping at different hierarchical levels. Here we report the first, to our knowledge, systematic review of the recent advances in studying the skeletal bone architecture by high-resolution X-ray tomography after submission of mice models to microgravity constrains.
机译:骨骼重塑过程包括缓慢的构建阶段和更快的吸收过程,目的是维持功能性骨骼运动以抵消地球重力。因此,在太空飞行期间,骨骼不会抵抗重力,而骨骼质量和密度迅速下降,有利于骨折。有几项研究通过对不同太空飞行返回的宇航员的骨骼结构和密度进行成像来解决这一问题。但是,先前报道的研究有两个缺点:一方面,该研究遭受了几乎所有人类航天研究的较小统计样本量,另一方面,该结果并不完全可靠,这主要是由于以下事实:与可用成像设备的空间分辨率相比,观察到的骨骼结构很小。高分辨率X射线断层摄影术的最新进展已通过新颖的方法激发了对负重骨骼部位的研究,这些方法主要基于使用小鼠及其各种毒株作为动物模型,有时利用同步加速器辐射支持对不同层次级别的3D骨骼结构和矿化度贴图进行方法研究。在这里,我们报告了我们所知,对小鼠模型进行微重力约束后,通过高分辨率X射线断层扫描研究骨骼研究的最新进展的系统综述。

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