Univ. of Kentucky, United States.
J Biomed Opt. 2021 Apr;26(4). doi: 10.1117/1.JBO.26.4.045001.
Optical fluorescence spectroscopy technique has been explored extensively to quantify both glucose uptake and mitochondrial metabolism with proper fluorescent probes in small tumor models in vivo. However, it remains a great challenge to rapidly quantify the intrinsic metabolic fluorophores from the optically measured fluorescence spectra that contain significant distortions due to tissue absorption and scattering.
To enable rapid spectral data processing and quantify the in vivo metabolic parameters in real-time, we present an empirical ratio-metric method for rapid fluorescence spectra attenuation correction with high accuracy.
A first-order approximation of intrinsic fluorescence spectra can be obtained by dividing the fluorescence spectra by diffuse reflectance spectra with some variable powers. We further developed this approximation for rapid extraction of intrinsic key metabolic probes (2-NBDG for glucose uptake and TMRE for mitochondrial function) by dividing the distorted fluorescence spectra by diffuse reflectance intensities recorded at excitation and emission peak with a pair of system-dependent powers. Tissue-mimicking phantom studies were conducted to evaluate the method.
The tissue-mimicking phantom studies demonstrated that our empirical method could quantify the key intrinsic metabolic probes in near real-time with an average percent error of ∼5 % .
An empirical method was demonstrated for rapid quantification of key metabolic probes from fluorescence spectra measured on a tissue-mimicking turbid medium. The proposed method will potentially facilitate real-time monitoring of key metabolic parameters of tumor models in vivo using optical spectroscopy, which will significantly advance translational cancer research.
光学荧光光谱技术已被广泛探索,以通过适当的荧光探针在体内小肿瘤模型中定量葡萄糖摄取和线粒体代谢。然而,由于组织吸收和散射,从光学测量的荧光光谱中快速定量内在代谢荧光团仍然是一个巨大的挑战。
为了能够快速处理光谱数据并实时定量体内代谢参数,我们提出了一种经验比度量法,用于快速荧光光谱衰减校正,具有高精度。
通过用一些变量幂将荧光光谱除以漫反射光谱,可以获得内在荧光光谱的一阶近似。我们通过用一对系统相关的幂将在激发和发射峰处记录的漫反射强度除以失真荧光光谱,进一步发展了这种近似,以快速提取内在关键代谢探针(用于葡萄糖摄取的 2-NBDG 和用于线粒体功能的 TMRE)。进行了组织模拟体研究以评估该方法。
组织模拟体研究表明,我们的经验方法可以在近实时平均约 5%的平均误差下定量关键内在代谢探针。
已经证明了一种用于从在混浊介质上测量的荧光光谱中快速定量关键代谢探针的经验方法。该方法将有望使用光谱学实时监测体内肿瘤模型的关键代谢参数,这将极大地推动癌症的转化研究。