Xu Jing, Molday Laurie L, Molday Robert S, Sarunic Marinko V
School of Engineering Science, Simon Fraser University, Burnaby, British Columbia, Canada.
Invest Ophthalmol Vis Sci. 2009 Jun;50(6):2989-93. doi: 10.1167/iovs.08-2542. Epub 2009 Jan 31.
The purpose of this study was to investigate Fourier domain optical coherence tomography (FD OCT) as a noninvasive tool for retinal imaging in the Rs1h-knockout mouse (model for X-linked juvenile retinoschisis).
A prototype spectrometer-based FD OCT system was used in combination with a custom optical beam-scanning platform. Images of the retinas from wild-type and Rs1h-knockout mice were acquired noninvasively with FD OCT with the specimen anesthetized. At the completion of the noninvasive FD OCT imaging, invasive retinal cross-sectional images (histology) were acquired from a nearby region for comparison to the FD OCT images.
The retinal layers were identifiable in the FD OCT images, permitting delineation and thickness measurement of the outer nuclear layer (ONL). During FD OCT in vivo imaging of the Rs1h-knockout mouse, holes were observed in the inner nuclear layer (INL), and retinal cell disorganization was observed as a change in the backscattering intensity profile. Comparison of the ONL measurements acquired noninvasively with FD OCT to measurements taken using histology at nearby locations showed a degeneration of roughly 30% of the ONL by the age of 2 months in Rs1h-knockout mice relative to wild-type.
FD OCT was demonstrated to be effective for noninvasive imaging of retinal degeneration and observation of retinal holes in Rs1h-knockout mice.
本研究旨在探讨傅里叶域光学相干断层扫描(FD OCT)作为一种用于Rs1h基因敲除小鼠(X连锁青少年视网膜劈裂症模型)视网膜成像的非侵入性工具。
基于光谱仪的FD OCT原型系统与定制的光束扫描平台联合使用。在对野生型和Rs1h基因敲除小鼠的视网膜进行成像时,将样本麻醉后,使用FD OCT进行非侵入性采集。在完成非侵入性FD OCT成像后,从附近区域获取侵入性视网膜横截面图像(组织学图像),以便与FD OCT图像进行比较。
在FD OCT图像中可识别出视网膜各层,从而能够对外核层(ONL)进行描绘和厚度测量。在对Rs1h基因敲除小鼠进行FD OCT体内成像过程中,在内核层(INL)观察到空洞,并且视网膜细胞无序排列表现为背向散射强度分布的变化。将通过FD OCT非侵入性获得的ONL测量值与在附近位置使用组织学方法获得的测量值进行比较,结果显示,与野生型相比,Rs1h基因敲除小鼠在2月龄时,约30%的ONL发生了退化。
已证明FD OCT对于Rs1h基因敲除小鼠的视网膜退化非侵入性成像以及视网膜空洞观察是有效的。