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Scanning optical coherence tomography probe for in vivo imaging and displacement measurements in the cochlea

机译:扫描光学相干断层扫描探头用于耳蜗的体内成像和位移测量

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摘要

We developed a spectral domain optical coherence tomography (SDOCT) fiber optic probe for imaging and sub-nanometer displacement measurements inside the mammalian cochlea. The probe, 140 μm in diameter, can scan laterally up to 400 μm by means of a piezoelectric bender. Two different sampling rates are used, 10 kHz for high-resolution B-scan imaging, and 100 kHz for displacement measurements in order to span the auditory frequency range of gerbil (~50 kHz). Once the cochlear structures are recognized, the scanning range is gradually decreased and ultimately stopped with the probe pointing at the selected angle to measure the simultaneous displacements of multiple structures inside the organ of Corti (OC). The displacement measurement is based on spectral domain phase microscopy. The displacement noise level depends on the A-scan signal of the structure within the OC and we have attained levels as low as ~0.02 nm in in vivo measurements. The system’s broadband infrared light source allows for an imaging depth of ~2.7 mm, and axial resolution of ~3 μm. In future development, the probe can be coupled with an electrode for time-locked voltage and displacement measurements in order to explore the electro-mechanical feedback loop that is key to cochlear processing. Here, we describe the fabrication of the laterally-scanning optical probe, and demonstrate its functionality with in vivo experiments.
机译:我们开发了一种光谱域光学相干断层扫描(SDOCT)光纤探头,用于哺乳动物耳蜗内部的成像和亚纳米位移测量。直径为140μm的探头可以通过压电弯曲器横向扫描至400μm。使用两种不同的采样率,高分辨率B扫描成像为10 kHz,位移测量为100 kHz,以跨越沙鼠的听觉频率范围(〜50 kHz)。一旦识别出耳蜗结构,扫描范围就会逐渐减小,并最终停止,探头指向选定的角度以测量Corti(OC)器官内多个结构的同时位移。位移测量基于光谱域相位显微镜。位移噪声水平取决于OC内结构的A扫描信号,并且在体内测量中我们已获得低至〜0.02 nm的水平。该系统的宽带红外光源可实现约2.7 mm的成像深度和约3μm的轴向分辨率。在未来的发展中,探头可与电极耦合以进行时限电压和位移测量,以探索对耳蜗处理至关重要的机电反馈回路。在这里,我们描述了横向扫描光学探头的制造,并通过体内实验证明了其功能。

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