Tinne Nadine, Antonopoulos Georgios C, Mohebbi Saleh, Andrade José, Nolte Lena, Meyer Heiko, Heisterkamp Alexander, Majdani Omid, Ripken Tammo
Biomedical Optics Department, Laser Zentrum Hannover e.V., Hannover, Germany.
Cluster of Excellence "Hearing4all", Hannover, Germany.
PLoS One. 2017 Sep 5;12(9):e0184069. doi: 10.1371/journal.pone.0184069. eCollection 2017.
The present study focuses on the application of scanning laser optical tomography (SLOT) for visualization of anatomical structures inside the human cochlea ex vivo. SLOT is a laser-based highly efficient microscopy technique which allows for tomographic imaging of the internal structure of transparent specimens. Thus, in the field of otology this technique is best convenient for an ex vivo study of the inner ear anatomy. For this purpose, the preparation before imaging comprises decalcification, dehydration as well as optical clearing of the cochlea samples in toto. Here, we demonstrate results of SLOT imaging visualizing hard and soft tissue structures with an optical resolution of down to 15 μm using extinction and autofluorescence as contrast mechanisms. Furthermore, the internal structure can be analyzed nondestructively and quantitatively in detail by sectioning of the three-dimensional datasets. The method of X-ray Micro Computed Tomography (μCT) has been previously applied to explanted cochlea and is solely based on absorption contrast. An advantage of SLOT is that it uses visible light for image formation and thus provides a variety of contrast mechanisms known from other light microscopy techniques, such as fluorescence or scattering. We show that SLOT data is consistent with μCT anatomical data and provides additional information by using fluorescence. We demonstrate that SLOT is applicable for cochlea with metallic cochlear implants (CI) that would lead to significant artifacts in μCT imaging. In conclusion, the present study demonstrates the capability of SLOT for resolution visualization of cleared human cochleae ex vivo using multiple contrast mechanisms and lays the foundation for a broad variety of additional studies.
本研究聚焦于扫描激光光学断层扫描(SLOT)在体外可视化人耳蜗内部解剖结构中的应用。SLOT是一种基于激光的高效显微镜技术,可对透明标本的内部结构进行断层成像。因此,在耳科学领域,该技术最适合用于内耳解剖结构的体外研究。为此,成像前的准备工作包括对耳蜗样本进行脱钙、脱水以及整体光学透明处理。在此,我们展示了SLOT成像的结果,利用消光和自发荧光作为对比机制,以低至15μm的光学分辨率可视化硬组织和软组织结构。此外,通过对三维数据集进行切片,可以对内部结构进行无损且详细的定量分析。X射线微计算机断层扫描(μCT)方法此前已应用于离体耳蜗,且仅基于吸收对比。SLOT的一个优点是它使用可见光进行成像,因此提供了其他光学显微镜技术已知的多种对比机制,如荧光或散射。我们表明SLOT数据与μCT解剖数据一致,并通过使用荧光提供了额外信息。我们证明SLOT适用于带有金属人工耳蜗(CI)的耳蜗,而这在μCT成像中会导致显著伪影。总之,本研究证明了SLOT利用多种对比机制在体外对清理后的人耳蜗进行高分辨率可视化的能力,并为广泛的其他研究奠定了基础。