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基于模型的光纤扩展波长漫反射光谱学特征化平台,用于识别神经血管束。

Model-based characterization platform of fiber optic extended-wavelength diffuse reflectance spectroscopy for identification of neurovascular bundles.

机构信息

Temple University, Department of Bioengineering, Philadelphia, Pennsylvania, United States, United States.

出版信息

J Biomed Opt. 2022 Sep;27(9). doi: 10.1117/1.JBO.27.9.095002.

Abstract

SIGNIFICANCE

Fiber-optic extended-wavelength diffuse reflectance spectroscopy (EWDRS) using both visible/near-infrared and shortwave-infrared detectors enables improved detection of spectral absorbances arising from lipids, water, and collagen and has demonstrated promise in a variety of applications, including detection of nerves and neurovascular bundles (NVB). Development of future applications of EWDRS for nerve detection could benefit from the use of model-based analyses including Monte Carlo (MC) simulations and evaluation of agreement between model systems and empirical measurements.

AIM

The aim of this work is to characterize agreement between EWDRS measurements and simulations and inform future applications of model-based studies of nerve-detecting applications.

APPROACH

A model-based platform consisting of an ex vivo microsurgical nerve dissection model, unique two-layer optical phantoms, and MC model simulations of fiber-optic EWDRS spectroscopic measurements were used to characterize EWDRS and compare agreement across models. In addition, MC simulations of an EWDRS measurement scenario are performed to provide a representative example of future analyses.

RESULTS

EWDRS studies performed in the common chicken thigh femoral nerve microsurgical dissection model indicate similar spectral features for classification of NVB versus adjacent tissues as reported in porcine models and human subjects. A comparison of measurements from unique EWDRS issue mimicking optical phantoms and MC simulations indicates high agreement between the two in homogeneous and two-layer optical phantoms, as well as in dissected tissues. Finally, MC simulations of measurement over a simulated NVB indicate the potential of future applications for measurement of nerve plexus.

CONCLUSIONS

Characterization of agreement between fiber-optic EWDRS measurements and MC simulations demonstrates strong agreement across a variety of tissues and optical phantoms, offering promise for further use to guide the continued development of EWDRS for translational applications.

摘要

意义

使用可见/近红外和短波近红外探测器的光纤扩展波长漫反射光谱(EWDRS)能够提高对脂质、水和胶原产生的光谱吸收率的检测能力,并在各种应用中显示出了潜力,包括检测神经和神经血管束(NVB)。未来 EWDRS 在神经检测中的应用的发展可以从使用基于模型的分析中受益,包括蒙特卡罗(MC)模拟和模型系统与经验测量之间的一致性评估。

目的

本工作的目的是描述 EWDRS 测量值和模拟值之间的一致性,并为基于模型的神经检测应用研究提供信息。

方法

一个基于模型的平台由离体显微神经解剖模型、独特的双层光学仿体和光纤 EWDRS 光谱测量的 MC 模型模拟组成,用于描述 EWDRS 并比较模型之间的一致性。此外,还对 EWDRS 测量场景进行了 MC 模拟,以提供未来分析的代表性示例。

结果

在常见的鸡大腿股骨神经显微解剖模型中进行的 EWDRS 研究表明,与在猪模型和人体中报道的 NVB 与相邻组织的分类相比,具有相似的光谱特征。独特的 EWDRS 问题模拟光学仿体和 MC 模拟的测量值之间的比较表明,在均匀和双层光学仿体以及解剖组织中,两者之间具有高度的一致性。最后,对模拟 NVB 上的测量进行 MC 模拟表明,未来应用于测量神经丛的潜力。

结论

光纤 EWDRS 测量值和 MC 模拟值之间的一致性特征表明,在各种组织和光学仿体中具有很强的一致性,为进一步指导 EWDRS 在转化应用中的持续发展提供了希望。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2ef1/9463544/f3f2de5c306c/JBO-027-095002-g001.jpg

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