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用于早期癌症检测的定量相位滤波波长调制差分光声雷达肿瘤缺氧成像

Quantitative phase-filtered wavelength-modulated differential photoacoustic radar tumor hypoxia imaging toward early cancer detection.

作者信息

Dovlo Edem, Lashkari Bahman, Soo Sean Choi Sung, Mandelis Andreas, Shi Wei, Liu Fei-Fei

机构信息

Center for Advanced Diffusion-Wave and Photoacoustic Technologies (CADIPT), Department of Mechanical and Industrial Engineering, University of Toronto, 5 King's College Road, Toronto, ON, M5S 3G8, Canada.

Ontario Cancer Institute, Princess Margaret Hospital, 610 University Ave, Toronto, ON, M5G 2M9, Canada.

出版信息

J Biophotonics. 2017 Sep;10(9):1134-1142. doi: 10.1002/jbio.201600168. Epub 2016 Oct 19.

Abstract

Overcoming the limitations of conventional linear spectroscopy used in multispectral photoacoustic imaging, wherein a linear relationship is assumed between the absorbed optical energy and the absorption spectra of the chromophore at a specific location, is crucial for obtaining accurate spatially-resolved quantitative functional information by exploiting known chromophore-specific spectral characteristics. This study introduces a non-invasive phase-filtered differential photoacoustic technique, wavelength-modulated differential photoacoustic radar (WM-DPAR) imaging that addresses this issue by eliminating the effect of the unknown wavelength-dependent fluence. It employs two laser wavelengths modulated out-of-phase to significantly suppress background absorption while amplifying the difference between the two photoacoustic signals. This facilitates pre-malignant tumor identification and hypoxia monitoring, as minute changes in total hemoglobin concentration and hemoglobin oxygenation are detectable. The system can be tuned for specific applications such as cancer screening and SO quantification by regulating the amplitude ratio and phase shift of the signal. The WM-DPAR imaging of a head and neck carcinoma tumor grown in the thigh of a nude rat demonstrates the functional PA imaging of small animals in vivo. The PA appearance of the tumor in relation to tumor vascularity is investigated by immunohistochemistry. Phase-filtered WM-DPAR imaging is also illustrated, maximizing quantitative SO imaging fidelity of tissues. Oxygenation levels within a tumor grown in the thigh of a nude rat using the two-wavelength phase-filtered differential PAR method.

摘要

克服多光谱光声成像中传统线性光谱学的局限性至关重要,传统线性光谱学假定在特定位置吸收的光能与发色团的吸收光谱之间存在线性关系,而通过利用已知的发色团特定光谱特征来获取准确的空间分辨定量功能信息。本研究引入了一种非侵入性的相位滤波差分光声技术,即波长调制差分光声雷达(WM-DPAR)成像,该技术通过消除未知的波长相关注量的影响来解决这一问题。它采用两个异相调制的激光波长,以显著抑制背景吸收,同时放大两个光声信号之间的差异。这有助于癌前肿瘤的识别和缺氧监测,因为总血红蛋白浓度和血红蛋白氧合的微小变化是可检测的。通过调节信号的幅度比和相移,该系统可针对特定应用进行调整,如癌症筛查和血氧饱和度(SO)定量。对裸鼠大腿上生长的头颈癌肿瘤进行的WM-DPAR成像展示了小动物体内的功能性光声成像。通过免疫组织化学研究了肿瘤的光声表现与肿瘤血管生成的关系。还展示了相位滤波的WM-DPAR成像,最大化了组织的定量SO成像保真度。使用双波长相位滤波差分光声雷达方法对裸鼠大腿上生长的肿瘤内的氧合水平进行了研究。

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