首页> 外文会议>Developments in X-Ray Tomography V; Progress in Biomedical Optics and Imaging; vol.7 no.38 >Anatomy of the murine and human cochlea visualized at the cellular level by synchrotron-radiation-based microcomputed tomography
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Anatomy of the murine and human cochlea visualized at the cellular level by synchrotron-radiation-based microcomputed tomography

机译:通过基于同步辐射的微型计算机断层扫描在细胞水平上观察鼠和人耳蜗的解剖

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Diseases of the hearing organ and impairment affect a significant fraction of population. Therefore, the hearing organ embedded as a helical structure in the cochlea within the hardest human osseous structure inside the petrous bone is intensively investigated. Currently, studies of the cochlea with true micrometer resolution or better are destructive. Membranes and three-dimensional vessel structures of post-mortem explanted human cochlea were only visualized with limited spatial resolution or deformed anatomical features resulting from preparation artifacts. We have applied a preparation and staining protocol developed for electron microscopy, which allows the visualization and quantification of a great variety of soft-tissue structures including the Reissner's membrane, the tectorial membrane, basilar membrane, modiolus, lamina radialis, and Nuel's space by the use of synchrotron-radiation-based micro computed tomography at the beamline BW 2 (HASYLAB at DESY). The level of detail can be even improved by the application of sophisticated' computer vision tools, which enables the extraction of the vascular tree down to the capillaries and of the course of nerve fibers as well as the topology of the osseous lamina radialis, which assembles the nerve fibers from the hair-cells to the ganglia in the center of the cochlea, the modiolus. These non-destructively obtained three-dimensional data are principal for the refined understanding of the hearing process by membranes morphologies and further anatomical features at the cellular level and for teaching purposes in medical curricula.
机译:听力器官疾病和损伤影响很大一部分人口。因此,深入研究了在耳蜗内最硬的人骨结构内嵌入作为耳蜗螺旋结构的听力器官。目前,对具有真正的微米分辨率或更佳分辨率的耳蜗的研究具有破坏性。尸体植入后的人类耳蜗的膜和三维血管结构仅在有限的空间分辨率或制备伪影导致的解剖结构变形的情况下才能看到。我们已经应用了为电子显微镜开发的制备和染色方案,该方案允许通过可视化和定量分析各种软组织结构,包括Reissner膜,tectec膜,基底膜,扁桃体,放射状椎板和Nuel空间。在光束线BW 2(DESY的HASYLAB)处使用基于同步辐射的微型计算机断层扫描。通过使用复杂的计算机视觉工具甚至可以提高细节水平,该工具可以将血管树提取到毛细血管和神经纤维的过程以及radial骨的椎板的拓扑结构从毛细胞到位于耳蜗中心的神经节的神经纤维。这些非破坏性获得的三维数据主要用于通过膜形态学以及在细胞水平上进一步的解剖特征来精细地理解听力过程,以及用于医学课程中的教学目的。

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