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Capabilities of Gabor-domain optical coherence microscopy for the assessment of corneal disease

机译:Gabor域光学相干显微镜在评估角膜疾病中的能力

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摘要

To identify the microstructural modification of the corneal layers during the course of the disease, optical technologies have been pushing the boundary of innovation to achieve cellular resolution of deep layers of the cornea. Gabor-domain optical coherence microscopy (GD-OCM), an optical coherence tomography-based technique that can achieve an isotropic of ~2μm resolution over a volume of 1 mm × 1 mm × 1.2 mm, was developed to investigate the microstructural modifications of corneal layers in four common corneal diseases. Since individual layer visualization without cutting through several layers is challenging due to corneal curvature, a flattening algorithm was developed to remove the global curvature of the endothelial layer and display the full view of the endothelium and Descemet's membrane in single en face images. As a result, GD-OCM revealed the qualitative changes in size and reflectivity of keratocytes in Fuchs endothelial corneal dystrophy (FECD), which varied by the degree of disease. More importantly, elongated shape and hyperactivation characteristics of keratocytes, associated with the early development of guttae, appeared to start in the posterior stroma very early in the disease process and move toward the anterior stroma during disease progression. This work opens a venue into the pathogenesis of FECD. optical coherence tomography; microscopy; ophthalmology; corneal imaging; corneal disease; Fuchs endothelial corneal dystrophy.
机译:为了确定疾病过程中角膜层的微结构修饰,光学技术一直在推动创新的边界,以实现角膜深层的细胞分辨率。 Gabor域光学相干显微镜(GD-OCM)是一种基于光学相干层析成像的技术,旨在在1 mm×1 mm×1.2 mm的体积上实现约2μm的各向同性分辨率,以研究角膜的微观结构变化在四种常见的角膜疾病中由于角膜曲率导致不切穿几层的单层可视化具有挑战性,因此开发了一种展平算法以去除内皮层的整体曲率,并在单面图像中显示内皮和Descemet膜的完整视图。结果,GD-OCM揭示了Fuchs内皮角膜营养不良(FECD)中角膜细胞大小和反射率的质性变化,随疾病的程度而变化。更重要的是,与胶质的早期发展相关的角化细胞的细长形状和过度活化特征似乎在疾病过程的早期开始于后基质开始,并在疾病进展过程中移向前基质。这项工作为FECD的发病机理提供了场所。光学相干断层扫描;显微镜眼科;角膜成像角膜病福克斯内皮角膜营养不良。

著录项

  • 来源
    《Journal of biomedical optics》 |2019年第4期|046002.1-046002.17|共17页
  • 作者单位

    Indiana University, School of Optometry, Bloomington, Indiana, United States;

    Jean Monnet University, Laboratory Biology, Engineering and Imaging of Corneal Graft, Faculty of Medicine, Saint-Etienne, France;

    Jean Monnet University, Laboratory Biology, Engineering and Imaging of Corneal Graft, Faculty of Medicine, Saint-Etienne, France,Institut Universitaire de France, Paris, France;

    Eye Care Center, Canandaigua, New York, United States;

    LighTopTech Corp., West Henrietta, New York, United States;

    University of Rochester, The Institute of Optics, Rochester, New York, United States;

    Universite de Lyon, Centre National de la Recherche Scientifique, Laboratoire Hubert Curien, Saint-Etienne, France;

    Jean Monnet University, Laboratory Biology, Engineering and Imaging of Corneal Graft, Faculty of Medicine, Saint-Etienne, France;

    LighTopTech Corp., West Henrietta, New York, United States,University of Rochester, The Institute of Optics, Rochester, New York, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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