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多模态自适应光学视网膜细胞成像

Trans-retinal cellular imaging with multimodal adaptive optics.

作者信息

Liu Zhuolin, Tam Johnny, Saeedi Osamah, Hammer Daniel X

机构信息

Center for Devices and Radiological Health (CDRH), U.S. Food and Drug Administration, 10903 New Hampshire Ave, Silver Spring, MD 20993, USA.

National Eye Institute, National Institutes of Health, Bethesda, MD, USA.

出版信息

Biomed Opt Express. 2018 Aug 14;9(9):4246-4262. doi: 10.1364/BOE.9.004246. eCollection 2018 Sep 1.

Abstract

Adaptive optics (AO), when coupled to different imaging modalities, has enabled resolution of various cell types across the entire retinal depth in the living human eye. Extraction of information from retinal cells is optimal when their optical properties, structure, and physiology are matched to the unique capabilities of each imaging modality. Despite the earlier success of multimodal AO (mAO) approaches, the full capabilities of the individual imaging modalities were often diminished rather than enhanced when integrated into multimodal platforms. Furthermore, many mAO designs added unnecessary complexity, making clinical translation difficult. In this study, we present a novel mAO system that combines two complementary approaches, scanning laser ophthalmoscopy (SLO) and optical coherence tomography (OCT), in one instrument using a simplified optical design, flexible alternation of scanning modes, and independent focus control. The mAO system imaging performance was demonstrated by visualization of cells in their mosaic arrangement across the full depth of the retina in three human subjects, including microglia, nerve fiber bundles, retinal ganglion cells and axons, and capillaries in the inner retina and foveal cones, peripheral rods, and retinal pigment epithelial cells in the outer retina. Multimodal AO is a powerful tool to capture the most complete picture of retinal health.

摘要

自适应光学(AO)与不同的成像方式相结合,能够在活体人眼中分辨出整个视网膜深度范围内的各种细胞类型。当视网膜细胞的光学特性、结构和生理特征与每种成像方式的独特能力相匹配时,从视网膜细胞中提取信息的效果最佳。尽管多模态AO(mAO)方法早期取得了成功,但当整合到多模态平台中时,各个成像方式的全部功能往往会减弱而非增强。此外,许多mAO设计增加了不必要的复杂性,使得临床转化变得困难。在本研究中,我们展示了一种新型的mAO系统,该系统在一台仪器中结合了两种互补方法,即扫描激光检眼镜(SLO)和光学相干断层扫描(OCT),采用了简化的光学设计、灵活的扫描模式切换以及独立的聚焦控制。通过在三名人类受试者的整个视网膜深度范围内可视化细胞的镶嵌排列,展示了mAO系统的成像性能,这些细胞包括小胶质细胞、神经纤维束、视网膜神经节细胞和轴突,以及视网膜内层的毛细血管、中央凹视锥细胞、周边视杆细胞和视网膜外层的视网膜色素上皮细胞。多模态AO是获取视网膜健康最完整图像的强大工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b2b9/6157758/3e15987ba22a/boe-9-9-4246-g001.jpg

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