Wang Shang, Larin Kirill V
Department of Biomedical Engineering, University of Houston, 3605 Cullen Blvd., Houston, Texas 77204-5060, USA ; Department of Molecular Physiology and Biophysics, Baylor College of Medicine, One Baylor Plaza, Houston, Texas 77030, USA.
Biomed Opt Express. 2014 Oct 6;5(11):3807-21. doi: 10.1364/BOE.5.003807. eCollection 2014 Nov 1.
High-resolution elastographic assessment of the cornea can greatly assist clinical diagnosis and treatment of various ocular diseases. Here, we report on the first noncontact depth-resolved micro-scale optical coherence elastography of the cornea achieved using shear wave imaging optical coherence tomography (SWI-OCT) combined with the spectral analysis of the corneal Lamb wave propagation. This imaging method relies on a focused air-puff device to load the cornea with highly-localized low-pressure short-duration air stream and applies phase-resolved OCT detection to capture the low-amplitude deformation with nano-scale sensitivity. The SWI-OCT system is used here to image the corneal Lamb wave propagation with the frame rate the same as the OCT A-line acquisition speed. Based on the spectral analysis of the corneal temporal deformation profiles, the phase velocity of the Lamb wave is obtained at different depths for the major frequency components, which shows the depthwise distribution of the corneal stiffness related to its structural features. Our pilot experiments on ex vivo rabbit eyes demonstrate the feasibility of this method in depth-resolved micro-scale elastography of the cornea. The assessment of the Lamb wave dispersion is also presented, suggesting the potential for the quantitative measurement of corneal viscoelasticity.
角膜的高分辨率弹性成像评估能够极大地辅助各种眼部疾病的临床诊断与治疗。在此,我们报告了首次使用剪切波成像光学相干断层扫描(SWI-OCT)结合角膜兰姆波传播的频谱分析实现的角膜非接触深度分辨微尺度光学相干弹性成像。这种成像方法依靠一个聚焦喷气装置向角膜加载高度局部化的低压短持续时间气流,并应用相位分辨OCT检测以纳米级灵敏度捕捉低振幅变形。此处使用SWI-OCT系统以与OCT A线采集速度相同的帧率对角膜兰姆波传播进行成像。基于角膜时间变形轮廓的频谱分析,可获得不同深度处主要频率成分的兰姆波相速度,这显示了与角膜结构特征相关的角膜硬度的深度分布。我们对离体兔眼进行初步实验,证明了该方法在角膜深度分辨微尺度弹性成像中的可行性。还展示了对兰姆波频散的评估,表明其在角膜粘弹性定量测量方面的潜力。