Department of Electrical Engineering and Computer Science, Research Laboratory of Electronics, Massachusetts Institute of Technology, Cambridge, MA, USA.
New England Eye Center, Tufts University School of Medicine, Boston, MA, USA.
Transl Vis Sci Technol. 2020 Jun 8;9(7):12. doi: 10.1167/tvst.9.7.12. eCollection 2020 Jun.
To develop high-speed, extended-range, ultrahigh-resolution spectral-domain optical coherence tomography (UHR SD-OCT) and demonstrate scan protocols for clinical retinal imaging.
A UHR SD-OCT operating at 840-nm with 150-nm bandwidths was developed. The axial imaging range was extended by dynamically matching reference arm length to the retinal contour during acquisition. Two scan protocols were demonstrated for imaging healthy participants and patients with dry age-related macular degeneration. A high-definition raster protocol with intra-B-scan reference arm length matching (ReALM) was used for high-quality cross-sectional imaging. A cube volume scan using horizontal and vertical rasters with inter-B-scan ReALM and software motion correction was used for en face and cross-sectional imaging. Linear OCT signal display enhanced visualization of outer retinal features.
UHR SD-OCT was demonstrated at 128- and 250-kHz A-scan rates with 2.7 µm axial resolution and a 1.2-mm, 6-dB imaging range in the eye. Dynamic ReALM was used to maintain the retina within the 6-dB imaging range over wider fields of view. Outer retinal features, including the rod and cone interdigitation zones, retinal pigment epithelium, and Bruch's membrane were visualized and alterations observed in age-related macular degeneration eyes.
Technological advances and dynamic ReALM improve the imaging performance and clinical usability of UHR SD-OCT.
These advances should simplify clinical imaging workflow, reduce imaging session times, and improve yield of high quality images. Improved visualization of photoreceptors, retinal pigment epithelium, and Bruch's membrane may facilitate diagnosis and monitoring of age-related macular degeneration and other retinal diseases.
开发高速、扩展范围、超高分辨率谱域光相干断层扫描(UHR SD-OCT),并展示用于临床视网膜成像的扫描方案。
开发了一种工作在 840nm 波长、带宽为 150nm 的 UHR SD-OCT。在采集过程中,通过动态匹配参考臂长度与视网膜轮廓,扩展轴向成像范围。展示了两种用于健康参与者和干性年龄相关性黄斑变性患者的临床成像的扫描方案。使用具有 Intra-B-scan 参考臂长度匹配(ReALM)的高分辨率光栅方案用于高质量的横截面成像。使用具有水平和垂直光栅的立方体体积扫描,并在 B-scan 之间使用 ReALM 和软件运动校正,用于 en face 和横截面成像。线性 OCT 信号显示增强了外视网膜特征的可视化。
UHR SD-OCT 在 128kHz 和 250kHz 的 A-scan 速率下进行了演示,轴向分辨率为 2.7μm,在眼睛中的成像范围为 1.2mm,6dB。动态 ReALM 用于在更宽的视场范围内将视网膜保持在 6dB 的成像范围内。可视化了外视网膜特征,包括杆和锥状交错区、视网膜色素上皮和 Bruch 膜,并观察到年龄相关性黄斑变性眼中的变化。
技术进步和动态 ReALM 提高了 UHR SD-OCT 的成像性能和临床可用性。
胡阳