Zilia Inc., Quebec City, Québec, Canada.
University of Alberta, Department of Chemical and Materials Engineering, Edmonton, Alberta, Canada.
J Biomed Opt. 2023 Dec;28(12):126004. doi: 10.1117/1.JBO.28.12.126004. Epub 2023 Dec 15.
The assessment of biomarkers in the eye is rapidly gaining traction for the screening, diagnosis, and monitoring of ocular and neurological diseases. Targeted ocular spectroscopy is a technology that enables concurrent imaging of the eye fundus and analysis of high-quality spectra from a targeted region within the imaged area. This provides structural, compositional, and functional information of specific regions of the eye fundus from a non-invasive approach to ocular biomarker detection.
The aim of our study was to demonstrate the multimodal functionality and validation of targeted ocular spectroscopy. This was done , using a reference target and a model eye, and .
Images and spectra from different regions of a reference target and a model eye were acquired and analyzed to validate the system. Targeted ocular fluorescence spectroscopy was also demonstrated with the same model. Subsequently, imaging and diffuse reflectance spectra were acquired to assess blood oxygen saturation in the optic nerve head and the parafovea of healthy subjects.
Tests conducted with the reference target showed accurate spectral analysis within specific areas of the imaging space. In the model eye, distinct spectral signatures were observed for the optic disc, blood vessels, the retina, and the macula, consistent with the variations in tissue composition and functions between these regions. An ocular oximetry algorithm was applied to spectra from the optic nerve head and parafovea of healthy patients, showing significant differences in blood oxygen saturation. Finally, targeted fluorescence spectral analysis was performed .
Diffuse reflectance and fluorescence spectroscopy in specific regions of the eye fundus open the door to a whole new range of monitoring and diagnostic capabilities, from assessment of oxygenation in glaucoma and diabetic retinopathy to photo-oxidation and photodegradation in age-related macular degeneration.
眼部生物标志物的评估正在迅速成为眼部和神经疾病筛查、诊断和监测的手段。靶向眼部光谱技术能够同时对眼底进行成像,并对成像区域内的靶向区域进行高质量光谱分析。这为从非侵入性方法检测眼部生物标志物提供了眼底特定区域的结构、组成和功能信息。
我们研究的目的是展示靶向眼部光谱的多功能性和验证。为此,使用参考目标和模型眼进行了演示,并且......
从参考目标和模型眼的不同区域获取图像和光谱,并对其进行分析以验证系统。还对相同的模型进行了靶向眼部荧光光谱测量。随后,对健康受试者的视神经头和旁中心区进行成像和漫反射光谱测量,以评估血氧饱和度。
对参考目标进行的测试表明,在成像空间的特定区域内可以进行准确的光谱分析。在模型眼中,观察到视盘、血管、视网膜和黄斑的特征光谱,与这些区域之间的组织组成和功能变化一致。将眼血氧计算法应用于健康患者视神经头和旁中心区的光谱,显示出血氧饱和度的显著差异。最后,进行了靶向荧光光谱分析。
眼底特定区域的漫反射和荧光光谱分析为监测和诊断能力开辟了全新的领域,从评估青光眼和糖尿病视网膜病变中的氧合作用,到评估年龄相关性黄斑变性中的光氧化和光降解。