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多模式光学光谱学用多生物标志物优化组织模拟体的制作和特性描述。

Fabrication and characterization of multi-biomarker optimized tissue-mimicking phantoms for multi-modal optical spectroscopy.

机构信息

Biophotonics@Tyndall, IPIC, Tyndall National Institute, T12 R5CP Cork, Ireland.

Department of Physics, University College Cork, T12 K8AF Cork, Ireland.

出版信息

Analyst. 2023 Sep 25;148(19):4768-4776. doi: 10.1039/d3an00680h.

Abstract

Rapid advancement of novel optical spectroscopy and imaging systems relies on the availability of well-characterised and reproducible protocols for phantoms as a standard for the validation of the technique. The tissue-mimicking phantoms are also used to investigate photon transport in biological samples before clinical trials that require well-characterized phantoms with known optical properties (reduced scattering (') and absorption () coefficients). However, at present, there is limited literature available providing well-characterized phantom recipes considering various biomarkers and tested over a wide range of optical properties covering most of the human organs and applicable to multimodal optical spectroscopy. In this study, gelatin-based phantoms were designed to simulate tissue optical properties where India ink and Intralipid were used as absorbing and scattering agents, respectively. Multiple biomarkers were simulated by varying the gelatin concentration to mimic the change in tissue hydration and hydroxyapatite concentration to mimic bone signature. The recipe along with biomarkers were optimized and characterised over a wide range of optical properties ( from 0.1 to 0.5 cm; ' from 5 to 15 cm) relevant to human tissue using a broadband time-domain diffuse optical spectrometer. The data collected showed a linear relationship between the concentration of ink/lipids and /' values with negligible coupling between and ' values. While being stored in a refrigerator post-fabrication, the and ' did not change significantly (<4% coefficient of variation, 'CV') over three weeks. The reproducibility in three different sets was validated experimentally and found to be strong with a variation of ≤6% CV in and ≤9% CV in '. From the 3 × 3 data of and ' matrices, one can deduce the recipe for any target absorption or reduced scattering coefficient. The applicability of the phantoms was tested using diffuse reflectance and Raman spectrometers. A use case application was demonstrated for Raman spectroscopy where hydration and hydroxyapatite phantoms were designed to characterize the Raman instrument. The Raman instrument could detect the change in 1% of HA and 5% of hydration. This study presents a first-of-its-kind robust, well-characterized, multi-biomarker phantom recipe for calibration and benchmarking of multimodal spectroscopy devices assisting in their clinical translation.

摘要

新型光学光谱和成像系统的快速发展依赖于具有良好特征和可重复的体模协议,作为技术验证的标准。组织模拟体模还用于在需要具有已知光学特性(降低散射(')和吸收()系数)的体模的临床试验之前研究生物样本中的光子传输。然而,目前,可用的文献有限,提供了具有各种生物标志物特征的体模配方,并在涵盖大多数人体器官和适用于多模态光学光谱学的广泛光学特性范围内进行了测试。在这项研究中,设计了基于明胶的体模,以模拟组织光学特性,其中印度墨水和 Intralipid 分别用作吸收剂和散射剂。通过改变明胶浓度来模拟组织水合作用的变化以及模拟骨特征的羟磷灰石浓度来模拟多种生物标志物。使用宽带时域漫反射光光谱仪,针对与人体组织相关的广泛光学特性(从 0.1 到 0.5 cm;'从 5 到 15 cm)对配方及其生物标志物进行了优化和表征。收集的数据显示,墨水/脂质浓度与 /'值之间呈线性关系,'值之间几乎没有耦合。在制造后存放在冰箱中时,在三周内,'和'没有明显变化(<4%的变异系数,'CV')。在三个不同组中进行了实验验证,发现可重复性很强,'和'的变异分别为≤6%CV 和≤9%CV。从'和'矩阵的 3 × 3 数据中,可以推导出任何目标吸收或降低散射系数的配方。通过漫反射和拉曼光谱仪测试了体模的适用性。展示了一个用于拉曼光谱的应用案例,设计了水合和羟磷灰石体模来表征拉曼仪器。拉曼仪器可以检测到 1%的 HA 和 5%的水合作用的变化。本研究提出了一种首例稳健、特征良好、多生物标志物的体模配方,用于校准和基准测试多模态光谱学设备,有助于其临床转化。

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