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RSC Adv. 2020 Jul 28;10(47):28171-28179. doi: 10.1039/d0ra04710d. eCollection 2020 Jul 27.
2
Optical properties of human brain and tumour tissue: An ex vivo study spanning the visible range to beyond the second near-infrared window.人脑和肿瘤组织的光学特性:在可见范围到第二个近红外窗口以外的离体研究。
J Biophotonics. 2022 Apr;15(4):e202100072. doi: 10.1002/jbio.202100072. Epub 2022 Feb 12.
3
Motor-Sparing Peripheral Nerve Blocks for Shoulder, Knee, and Hip Surgery.用于肩部、膝部和髋部手术的保留运动功能的周围神经阻滞
Adv Anesth. 2020 Dec;38:189-207. doi: 10.1016/j.aan.2020.08.003. Epub 2020 Oct 1.
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Application driven assessment of probe designs for Raman spectroscopy.用于拉曼光谱的探针设计的应用驱动评估
Biomed Opt Express. 2021 Jan 14;12(2):852-871. doi: 10.1364/BOE.413436. eCollection 2021 Feb 1.
5
Near-infrared nerve-binding fluorophores for buried nerve tissue imaging.用于埋植神经组织成像的近红外神经结合荧光团。
Sci Transl Med. 2020 May 6;12(542). doi: 10.1126/scitranslmed.aay0712.
6
Optical characterization of porcine tissues from various organs in the 650-1100 nm range using time-domain diffuse spectroscopy.使用时域漫反射光谱法对650-1100纳米范围内来自猪不同器官的组织进行光学表征。
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Determination of optical properties of human tissues obtained from parotidectomy in the spectral range of 250 to 800 nm.测定 250 至 800nm 光谱范围内的腮腺切除术后人体组织的光学特性。
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Iatrogenic peripheral nerve injuries.医源性周围神经损伤。
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测量大鼠和人体组织的光学特性以改善周围神经的光学检测和可视化。

Measurement of rat and human tissue optical properties for improving the optical detection and visualization of peripheral nerves.

作者信息

Haugen Ezekiel J, Throckmorton Graham A, Walter Alec B, Mahadevan-Jansen Anita, Baba Justin S

机构信息

Vanderbilt Biophotonics Center, Vanderbilt University, Nashville, TN, USA.

Department of Biomedical Engineering, Vanderbilt University, Nashville, TN, USA.

出版信息

Biomed Opt Express. 2023 May 23;14(6):2839-2856. doi: 10.1364/BOE.488761. eCollection 2023 Jun 1.

DOI:10.1364/BOE.488761
PMID:37342709
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10278628/
Abstract

Peripheral nerve damage frequently occurs in challenging surgical cases resulting in high costs and morbidity. Various optical techniques have proven effective in detecting and visually enhancing nerves, demonstrating their translational potential for assisting in nerve-sparing medical procedures. However, there is limited data characterizing the optical properties of nerves in comparison to surrounding tissues, thus limiting the optimization of optical nerve detection systems. To address this gap, the absorption and scattering properties of rat and human nerve, muscle, fat, and tendon were determined from 352-2500 nm. The optical properties highlighted an ideal region in the shortwave infrared for detecting embedded nerves, which remains a significant challenge for optical approaches. A 1000-1700 nm hyperspectral diffuse reflectance imaging system was used to confirm these results and identify optimal wavelengths for nerve imaging contrast in an rat model. Optimal nerve visualization contrast was achieved using 1190/1100 nm ratiometric imaging and was sustained for nerves embedded under ≥600 µm of fat and muscle. Overall, the results provide valuable insights for optimizing the optical contrast of nerves, including those embedded in tissue, which could lead to improved surgical guidance and nerve-sparing outcomes.

摘要

周围神经损伤在具有挑战性的外科手术病例中经常发生,导致高昂的成本和发病率。各种光学技术已被证明在检测和视觉增强神经方面有效,显示出它们在辅助保留神经的医疗程序中的转化潜力。然而,与周围组织相比,表征神经光学特性的数据有限,从而限制了光学神经检测系统的优化。为了填补这一空白,在352 - 2500纳米范围内测定了大鼠和人类神经、肌肉、脂肪和肌腱的吸收和散射特性。光学特性突出了短波红外中用于检测嵌入神经的理想区域,这对光学方法来说仍然是一个重大挑战。使用1000 - 1700纳米的高光谱漫反射成像系统来证实这些结果,并在大鼠模型中确定神经成像对比度的最佳波长。使用1190/1100纳米的比率成像实现了最佳的神经可视化对比度,并且对于嵌入在≥600微米脂肪和肌肉下的神经,这种对比度得以维持。总体而言,这些结果为优化神经的光学对比度提供了有价值的见解,包括那些嵌入组织中的神经,这可能会改善手术指导和保留神经的效果。