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Shear wave imaging optical coherence tomography (SWI-OCT) for ocular tissue biomechanics

机译:剪切波成像光学相干断层扫描(SWI-OCT)用于眼部组织生物力学

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We report on a noncontact low-coherence optical phase-based imaging method, termed shear wave imaging optical coherence tomography (SWI-OCT), which enables 2D depth-resolved visualization of the low-amplitude elastic wave propagation in tissue with ultrahigh frame rate. SWI-OCT is based on 1D transverse scanning of the M-mode OCT imaging that is precisely synchronized with a low-pressure short-duration air-puff loading system. This approach of scanning and data recording allows visualization of the induced tissue deformation at high frame rate. The applied phase-resolved interferometric technique, with sensitivity on the nanometer scale, makes the low-amplitude tissue displacement detectable. For the demonstration of this method, and to study its application for tissue biomechanics, we performed pilot experiments on agar phantoms and ex vivo rabbit corneas. Samples with different elastic properties can be differentiated based on the velocity of the elastic wave propagation that is directly visualized with a 25 kHz frame rate. Our results indicate that SWI-OCT has the potential to be further developed as a major technique for depth-resolved high-resolution tissue elastography in vivo.
机译:我们报告了一种基于非接触式低相干光学相的成像方法,称为剪切波成像光学相干断层扫描(SWI-OCT),该方法可实现低振幅弹性波在组织中以超高帧频传播的二维深度分辨可视化。 SWI-OCT基于M模式OCT成像的一维横向扫描,该扫描与低压短时吹气加载系统精确同步。这种扫描和数据记录的方法可以在高帧频下可视化诱导的组织变形。所应用的相分辨干涉技术具有纳米级的灵敏度,可检测低振幅的组织位移。为了演示此方法,并研究其在组织生物力学中的应用,我们在琼脂体模和离体兔角膜上进行了中试实验。可以基于以25 kHz帧频直接可视化的弹性波传播速度来区分具有不同弹性特性的样本。我们的结果表明,SWI-OCT有潜力进一步发展为体内深度分辨高分辨率组织弹性成像的一项主要技术。

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