Hasan Md Zahid, Saha Pranto Soumik, Korfhage Madison O, Zhu Caigang
Department of Biomedical Engineering, University of Kentucky, Lexington, KY 40506, USA.
Biomed Opt Express. 2023 Sep 25;14(10):5418-5439. doi: 10.1364/BOE.502778. eCollection 2023 Oct 1.
Fiber-optic probes are commonly used in biomedical optical spectroscopy platforms for light delivery and collection. At the same time, it was reported that the inconsistent probe-sample contact could induce significant distortions in measured optical signals, which consequently cause large analysis errors. To address this challenge, non-contact optical spectroscopy has been explored for tissue characterizations. However, existing non-contact optical spectroscopy platforms primarily focused on diffuse reflectance measurements and may still use a fiber probe in which the probe was imaged onto the tissue surface using a lens, which serves as a non-contact probe for the measurements. Here, we report a fiber-probe-free, dark-field-based, non-contact optical spectroscopy for both diffuse reflectance and fluorescence measurements on turbid medium and tissues. To optimize the system design, we developed a novel Monte Carlo method to simulate such a non-contact setup for both diffuse reflectance and fluorescence measurements on murine subcutaneous tissue models with a spherical tumor-like target. We performed Monte Carlo simulations to identify the most tumor-sensitive configurations, from which we found that both the depth of the light focal point in tissue and the lens numerical aperture would dramatically affect the system's tumor detection sensitivity. We then conducted tissue-mimicking phantom studies to solidify these findings. Our reported Monte Carlo technique can be a useful computational tool for designing non-contact optical spectroscopy systems. Our non-contact optical setup and experimental findings will potentially offer a new approach for sensitive optical monitoring of tumor physiology in biological models using a non-contact optical spectroscopy platform to advance cancer research.
光纤探头常用于生物医学光学光谱平台中的光传输和收集。同时,据报道,探头与样品接触不一致会在测量的光信号中引起显著失真,从而导致较大的分析误差。为应对这一挑战,人们探索了非接触式光学光谱用于组织表征。然而,现有的非接触式光学光谱平台主要侧重于漫反射测量,并且可能仍使用光纤探头,其中探头通过透镜成像到组织表面,该透镜用作测量的非接触探头。在此,我们报告一种无光纤探头、基于暗场的非接触式光学光谱,用于对浑浊介质和组织进行漫反射和荧光测量。为优化系统设计,我们开发了一种新颖的蒙特卡罗方法,以模拟这种用于在具有球形肿瘤样靶点的小鼠皮下组织模型上进行漫反射和荧光测量的非接触设置。我们进行了蒙特卡罗模拟以确定最敏感于肿瘤的配置,从中我们发现组织中光焦点的深度和透镜数值孔径都会显著影响系统的肿瘤检测灵敏度。然后我们进行了组织模拟体模研究以巩固这些发现。我们报道的蒙特卡罗技术可以成为设计非接触式光学光谱系统的有用计算工具。我们的非接触式光学设置和实验结果可能会提供一种新方法,用于使用非接触式光学光谱平台对生物模型中的肿瘤生理学进行灵敏光学监测,以推进癌症研究。