European Institute for ORL-HNS, GZA Hospitals Antwerp, Oosterveldlaan 24, Wilrijk, Antwerp 2610, Belgium.
Elettra Sincrotrone Trieste S.C.p.A., S.S. 14 Area Science Park, 34149 Basovizza, Trieste Italy.
J Synchrotron Radiat. 2021 Jan 1;28(Pt 1):327-332. doi: 10.1107/S1600577520014952.
Recently, synchrotron radiation computed microtomography (SRµCT) has emerged as a promising tool for non-destructive, in situ visualization of cochlear implant electrode arrays inserted into a human cochlea. Histological techniques have been the `gold standard' technique for accurate localization of cochlear implant electrodes but are suboptimal for precise three-dimensional measurements. Here, an SRµCT experimental setup is proposed that offers the benefit of a high spatial and contrast resolution (isotropic voxel size = 4.95 µm and propagation-based phase-contrast imaging), while visualizing the soft-tissue structures and electrode array of the cochlear implant simultaneously. In this work, perimodiolar electrode arrays have been tested, which incorporate thick and closely spaced platinum-iridium contacts and wiring. These data can assist cochlear implant and hearing research, can be used to verify electrode segmentation techniques for clinical computed tomography or could be utilized to evaluate cochlear implant electrode array designs.
最近,同步辐射计算微断层扫描(SRµCT)已成为一种很有前途的工具,可用于对插入人耳蜗的耳蜗植入电极阵列进行非破坏性、原位可视化。组织学技术一直是耳蜗植入电极精确定位的“金标准”技术,但不适合精确的三维测量。在这里,提出了一种 SRµCT 实验设置,该设置具有高空间和对比分辨率(各向同性体素尺寸=4.95μm 和基于传播的相衬成像)的优势,同时可以同时可视化耳蜗植入的软组织结构和电极阵列。在这项工作中,已经测试了围绕模式电极阵列,该阵列包含了厚且间距紧密的铂-铱触点和布线。这些数据可以协助耳蜗植入和听力研究,可以用于验证临床计算机断层扫描的电极分割技术,或者可用于评估耳蜗植入电极阵列设计。