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首页> 外文期刊>Physics in medicine and biology. >Coronal in vivo forward-imaging of rat brain morphology with an ultra-small optical coherence tomography fiber probe
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Coronal in vivo forward-imaging of rat brain morphology with an ultra-small optical coherence tomography fiber probe

机译:用超小型光学相干断层扫描光纤探头对大鼠脑形态进行冠状体内正向成像

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摘要

A well-established navigation method is one of the key conditions for successful brain surgery: it should be accurate, safe and online operable. Recent research shows that optical coherence tomography (OCT) is a potential solution for this application by providing a high resolution and small probe dimension. In this study a fiber-based spectral-domain OCT system utilizing a super-luminescent-diode with the center wavelength of 840 nm providing 14.5 ??m axial resolution was used. A composite 125 ??m diameter detecting probe with a gradient index (GRIN) fiber fused to a single mode fiber was employed. Signals were reconstructed into grayscale images by horizontally aligning A-scans from the same trajectory with different depths. The reconstructed images can display brain morphology along the entire trajectory. For scans of typical white matter, the signals showed a higher reflection of light intensity with lower penetration depth as well as a steeper attenuation rate compared to the scans typical for gray matter. Micro-structures such as axon bundles (70 ??m) in the caudate nucleus are visible in the reconstructed images. This study explores the potential of OCT to be a navigation modality in brain surgery. ? 2013 Institute of Physics and Engineering in Medicine.
机译:完善的导航方法是成功进行脑部手术的关键条件之一:它应该准确,安全并且可以在线操作。最近的研究表明,光学相干断层扫描(OCT)通过提供高分辨率和小探针尺寸,是该应用程序的潜在解决方案。在这项研究中,使用了一种基于光纤的光谱域OCT系统,该系统利用了中心波长为840 nm的超发光二极管,并提供了14.5?m的轴向分辨率。使用具有融合到单模光纤上的梯度折射率(GRIN)光纤的复合125微米直径检测探头。通过将来自相同轨迹,不同深度的A扫描水平对齐,将信号重建为灰度图像。重建的图像可以沿整个轨迹显示大脑形态。与典型的灰质扫描相比,对于典型的白质扫描,信号显示出较高的光强度反射,且穿透深度较低,衰减率更陡。在重建图像中可以看到尾状核中的微结构,例如轴突束(70 ?? m)。这项研究探索了OCT在脑外科手术中成为导航方式的潜力。 ? 2013医学物理与工程学院。

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