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Segmentation of Nanotomographic Cortical Bone Images for Quantitative Characterization of the Osteoctyte Lacuno-Canalicular Network

机译:纳米谱纹皮质骨图像的分割,用于定量表征骨质疏松骨瓣剖腹网络

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A newly developed data processing method able to characterize the osteocytes lacuno-canalicular network (LCN) is presented. Osteocytes are the most abundant cells in the bone, living in spaces called lacunae embedded inside the bone matrix and connected to each other with an extensive network of canals that allows for the exchange of nutrients and for mechanotransduction functions. The geometrical three-dimensional (3D) architecture is increasingly thought to be related to the macroscopic strength or failure of the bone and it is becoming the focus for investigating widely spread diseases such as osteoporosis. To obtain 3D LCN images non-destructively has been out of reach until recently, since tens-of-nanometers scale resolution is required. Ptychographic tomography was validated for bone imaging in [1], showing clearly the LCN. The method presented here was applied to 3D ptychographic tomographic images in order to extract morphological and geometrical parameters of the lacuno-canalicular structures.
机译:提出了一种新开发的数据处理方法,其能够表征骨细胞Lacuno-Canoicular网络(LCN)。骨细胞是骨骼中最丰富的细胞,生活在嵌入骨基质内的空隙的空间中,并且彼此连接,具有广泛的运河网络,允许交换营养物和机械调节功能。几何三维(3D)架构越来越被认为与骨骼的宏观强度或失败有关,并且它成为研究疏松疏松症等广泛传播疾病的关注。为了获得3D LCN图像,直到最近,不得破坏性地遥不可及,因为需要三纳米刻度分辨率。 PTychrapue断层扫描被验证为[1]中的骨骼成像,清楚地显示LCN。这里呈现的方法应用于3D PTYChrapue断层图像,以便提取格拉内穴结构的形态学和几何参数。

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