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Polarization sensitive optical coherence tomography for imaging microvascular information within living tissue without polarization-induced artifacts

机译:偏振敏感光学相干断层扫描用于在没有偏振诱导的工件的情况下成像微血管信息

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摘要

When imaging birefringent samples using optical coherence tomography angiography (OCTA), the phase retardation may appear opposite to the phase change due to the blood flow in the orthogonal signals, for which a cancellation effect can occur when deriving OCTA signals. This effect can diminish the ability of OCTA to detect vascular information, leading to an erroneous interpretation of the final OCTA images. To mitigate this issue, we demonstrate polarization-sensitive optical coherence tomography (PS-OCT) to image microvascular information within a living sample without polarization induced artifacts. The system is furnished with a swept source OCT (SS-OCT) that incorporates two imaging modes: OCTA imaging and polarization-sensitive imaging. PS-OCT is used to provide birefringent contrast where the color-encoded Stokes parameters are used to obtain high contrast polarization-state images. OCTA is used to acquire high-resolution images of functional microvascular networks permeating the scanned tissue volume. Taking the advantages of the dual-channel PS-OCT configuration, the polarization induced artifacts are eliminated from OCTA vascular imaging. The proposed PS-OCTA system is employed to visualize the birefringent components and the vascular networks of the human skin in vivo. It is expected that the proposed system setup would have useful and practical applications in the investigations of the vasculature in the birefringent tissue samples both pre-clinically and clinically.
机译:当使用光学相干断层造影血管造影(OCTA)进行成像双折射样品时,相位延迟可能与由于正交信号中的血流引起的相变相反,因此在导出OCTA信号时可能发生消除效果。这种效果可以缩短Octa检测血管信息的能力,导致对最终OctA图像的错误解释。为了减轻这个问题,我们将偏振敏感光学相干断层扫描(PS-OCT)展示到活样品内的图像微血管信息而无需极化诱导的伪影。该系统具有扫描源OCT(SS-OCT),其包含两个成像模式:Octa成像和偏振敏感成像。 PS-OCT用于提供双折射对比,其中颜色编码的斯托克斯参数用于获得高对比度极化状态图像。 OctA用于获取渗透扫描组织体积的功能性微血管网络的高分辨率图像。采用双通道PS-OCT配置的优点,从OctA血管成像消除了极化诱导的伪影。所提出的PS-Octa系统用于可视化双折射成分和体内人体皮肤的血管网络。预计建议的系统设置将在预临床和临床上调查双折射组织样本在双折射组织样本中的血管系统中的实际应用。

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