Feng Ximeng, Jin Zi, Zhou Zixia, Gao Mengdi, Jiang Chunxia, Hu Yicheng, Lu Yanye, Li Jinying, Ren Qiushi, Zhou Chuanqing
Department of Biomedical Engineering, College of Future Technology, Peking University, Beijing 100871, China.
Institute of Biomedical Engineering, Shenzhen Bay Laboratory, Shenzhen 5181071, China.
Biomed Opt Express. 2022 Sep 23;13(10):5400-5417. doi: 10.1364/BOE.465991. eCollection 2022 Oct 1.
The retina is one of the most metabolically active tissues in the body. The dysfunction of oxygen kinetics in the retina is closely related to the disease and has important clinical value. Dynamic imaging and comprehensive analyses of oxygen kinetics in the retina depend on the fusion of structural and functional imaging and high spatiotemporal resolution. But it's currently not clinically available, particularly via a single imaging device. Therefore, this work aims to develop a retinal oxygen kinetics imaging and analysis (ROKIA) technology by integrating dual-wavelength imaging with laser speckle contrast imaging modalities, which achieves structural and functional analysis with high spatial resolution and dynamic measurement, taking both external and lumen vessel diameters into account. The ROKIA systematically evaluated eight vascular metrics, four blood flow metrics, and fifteen oxygenation metrics. The single device scheme overcomes the incompatibility of optical design, harmonizes the field of view and resolution of different modalities, and reduces the difficulty of registration and image processing algorithms. More importantly, many of the metrics (such as oxygen delivery, oxygen metabolism, vessel wall thickness, etc.) derived from the fusion of structural and functional information, are unique to ROKIA. The oxygen kinetic analysis technology proposed in this paper, to our knowledge, is the first demonstration of the vascular metrics, blood flow metrics, and oxygenation metrics via a single system, which will potentially become a powerful tool for disease diagnosis and clinical research.
视网膜是人体代谢最活跃的组织之一。视网膜中氧动力学功能障碍与疾病密切相关,具有重要的临床价值。视网膜氧动力学的动态成像和综合分析依赖于结构和功能成像以及高时空分辨率的融合。但目前临床上尚无此技术,特别是通过单一成像设备实现。因此,本研究旨在通过将双波长成像与激光散斑对比成像模式相结合,开发一种视网膜氧动力学成像与分析(ROKIA)技术,该技术能够在考虑血管外径和内径的同时,实现高空间分辨率的结构和功能分析以及动态测量。ROKIA系统地评估了八个血管指标、四个血流指标和十五个氧合指标。单设备方案克服了光学设计的不兼容性,协调了不同模式的视野和分辨率,并降低了配准和图像处理算法的难度。更重要的是,许多从结构和功能信息融合中得出的指标(如氧输送、氧代谢、血管壁厚度等)是ROKIA所独有的。据我们所知,本文提出的氧动力学分析技术是首次通过单一系统展示血管指标、血流指标和氧合指标,这有可能成为疾病诊断和临床研究的有力工具。