Nam Hyeong Soo, Kang Woo Jae, Lee Min Woo, Song Joon Woo, Kim Jin Won, Oh Wang-Yuhl, Yoo Hongki
Department of Biomedical Engineering, Hanyang University, 222 Wangsimni-ro, Seongdong-gu, Seoul 04673, South Korea.
Equally contributed to this study.
Biomed Opt Express. 2018 Mar 27;9(4):1930-1947. doi: 10.1364/BOE.9.001930. eCollection 2018 Apr 1.
The pathophysiological progression of chronic diseases, including atherosclerosis and cancer, is closely related to compositional changes in biological tissues containing endogenous fluorophores such as collagen, elastin, and NADH, which exhibit strong autofluorescence under ultraviolet excitation. Fluorescence lifetime imaging (FLIm) provides robust detection of the compositional changes by measuring fluorescence lifetime, which is an inherent property of a fluorophore. In this paper, we present a dual-modality system combining a multispectral analog-mean-delay (AMD) FLIm and a high-speed swept-source optical coherence tomography (OCT) to simultaneously visualize the cross-sectional morphology and biochemical compositional information of a biological tissue. Experiments using standard fluorescent solutions showed that the fluorescence lifetime could be measured with a precision of less than 40 psec using the multispectral AMD-FLIm without averaging. In addition, we performed imaging on rabbit iliac normal-looking and atherosclerotic specimens to demonstrate the feasibility of the combined FLIm-OCT system for atherosclerosis imaging. We expect that the combined FLIm-OCT will be a promising next-generation imaging technique for diagnosing atherosclerosis and cancer due to the advantages of the proposed label-free high-precision multispectral lifetime measurement.
包括动脉粥样硬化和癌症在内的慢性疾病的病理生理进展,与含有内源性荧光团(如胶原蛋白、弹性蛋白和NADH)的生物组织的成分变化密切相关,这些荧光团在紫外线激发下会发出强烈的自发荧光。荧光寿命成像(FLIm)通过测量荧光寿命来可靠地检测成分变化,荧光寿命是荧光团的固有特性。在本文中,我们提出了一种双模态系统,该系统结合了多光谱模拟平均延迟(AMD)FLIm和高速扫频源光学相干断层扫描(OCT),以同时可视化生物组织的横截面形态和生化成分信息。使用标准荧光溶液进行的实验表明,使用多光谱AMD-FLIm无需平均即可精确测量荧光寿命,精度小于40皮秒。此外,我们对兔髂动脉外观正常和动脉粥样硬化的标本进行了成像,以证明FLIm-OCT联合系统用于动脉粥样硬化成像的可行性。由于所提出的无标记高精度多光谱寿命测量的优势,我们预计联合FLIm-OCT将成为诊断动脉粥样硬化和癌症的有前途的下一代成像技术。