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首页> 外文期刊>Investigative ophthalmology & visual science >Noninvasive volumetric imaging and morphometry of the rodent retina with high-speed, ultrahigh-resolution optical coherence tomography.
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Noninvasive volumetric imaging and morphometry of the rodent retina with high-speed, ultrahigh-resolution optical coherence tomography.

机译:用高速,超高分辨率光学相干断层扫描技术对啮齿动物视网膜进行无创体积成像和形态测定。

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摘要

PURPOSE: To demonstrate high-speed, ultrahigh-resolution optical coherence tomography (OCT) for noninvasive, in vivo, three-dimensional imaging of the retina in rat and mouse models. METHODS: A high-speed, ultrahigh-resolution OCT system using spectral, or Fourier domain, detection has been developed for small animal retinal imaging. Imaging is performed with a contact lens and postobjective scanning. An axial image resolution of 2.8 mum is achieved with a spectrally broadband superluminescent diode light source with a bandwidth of approximately 150 nm at approximately 900-nm center wavelength. Imaging can be performed at 24,000 axial scans per second, which is approximately 100 times faster than previous ultrahigh-resolution OCT systems. High-definition and three-dimensional retinal imaging is performed in vivo in mouse and rat models. RESULTS: High-speed, ultrahigh-resolution OCT enabled high-definition, high transverse pixel density imaging of the murine retina and visualization of all major intraretinal layers. Raster scan protocols enabled three-dimensional volumetric imagingand comprehensive retinal segmentation algorithms allowed measurement of retinal layers. An OCT fundus image, akin to a fundus photograph was generated by axial summation of three-dimensional OCT data, thus enabling precise registration of OCT measurements to retinal fundus features. CONCLUSIONS: High-speed, ultrahigh-resolution OCT enables imaging of retinal architectural morphology in small animal models. OCT fundus images allow precise registration of OCT images and repeated measurements with respect to retinal fundus features. Three-dimensional OCT imaging enables visualization and quantification of retinal structure, which promises to allow repeated, noninvasive measurements to track disease progression, thereby reducing the need for killing the animal for histology. This capability can accelerate basic research studies in rats and mice and their translation into clinical patient care.
机译:目的:展示高速,超高分辨率光学相干断层扫描(OCT),用于大鼠和小鼠模型中视网膜的非侵入性,体内三维成像。方法:已经开发了一种使用光谱或傅里叶域检测的高速,超高分辨率OCT系统,用于小动物视网膜成像。用隐形眼镜和物镜后扫描进行成像。使用光谱宽带超发光二极管光源在中心波长约为900 nm时具有约150 nm的带宽,可实现2.8 mm的轴向图像分辨率。成像速度为每秒24,000次轴向扫描,比以前的超高分辨率OCT系统快约100倍。在小鼠和大鼠模型体内进行高清和三维视网膜成像。结果:高速,超高分辨率的OCT实现了鼠视网膜的高清晰度,高横向像素密度成像以及所有主要视网膜内层的可视化。光栅扫描协议支持三维体积成像,全面的视网膜分割算法可以测量视网膜层。通过对三维OCT数据进行轴向求和,可以生成类似于眼底照片的OCT眼底图像,从而可以将OCT测量值精确配准到视网膜眼底特征。结论:高速,超高分辨率的OCT可以在小型动物模型中对视网膜建筑形态进行成像。 OCT眼底图像可对OCT图像进行精确配准,并针对视网膜眼底特征进行重复测量。三维OCT成像可实现视网膜结构的可视化和量化,从而有望进行重复的,非侵入性的测量以跟踪疾病的进展,从而减少了为了组织学而杀死动物的需求。这种功能可以加速对大鼠和小鼠的基础研究,并将其转化为临床患者护理。

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