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Design and evaluation of a device for fast multispectral time-resolved fluorescence spectroscopy and imaging

机译:快速多光谱时间分辨荧光光谱和成像设备的设计和评估

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摘要

The application of time-resolved fluorescence spectroscopy (TRFS) to in vivo tissue diagnosis requires a method for fast acquisition of fluorescence decay profiles in multiple spectral bands. This study focusses on development of a clinically compatible fiber-optic based multispectral TRFS (ms-TRFS) system together with validation of its accuracy and precision for fluorescence lifetime measurements. It also presents the expansion of this technique into an imaging spectroscopy method. A tandem array of dichroic beamsplitters and filters was used to record TRFS decay profiles at four distinct spectral bands where biological tissue typically presents fluorescence emission maxima, namely, 390, 452, 542, and 629 nm. Each emission channel was temporally separated by using transmission delays through 200 μm diameter multimode optical fibers of 1, 10, 19, and 28 m lengths. A Laguerre-expansion deconvolution algorithm was used to compensate for modal dispersion inherent to large diameter optical fibers and the finite bandwidth of detectors and digitizers. The system was found to be highly efficient and fast requiring a few nano-Joule of laser pulse energy and <1 ms per point measurement, respectively, for the detection of tissue autofluorescent components. Organic and biological chromophores with lifetimes that spanned a 0.8–7 ns range were used for system validation, and the measured lifetimes from the organic fluorophores deviated by less than 10% from values reported in the literature. Multi-spectral lifetime images of organic dye solutions contained in glass capillary tubes were recorded by raster scanning the single fiber probe in a 2D plane to validate the system as an imaging tool. The lifetime measurement variability was measured indicating that the system provides reproducible results with a standard deviation smaller than 50 ps. The ms-TRFS is a compact apparatus that makes possible the fast, accurate, and precise multispectral time-resolved fluorescence lifetime measurements of low quantum efficiency sub-nanosecond fluorophores.
机译:时间分辨荧光光谱法(TRFS)在体内组织诊断中的应用需要一种用于快速获取多个光谱带中的荧光衰减曲线的方法。这项研究的重点是开发一种临床兼容的基于光纤的多光谱TRFS(ms-TRFS)系统,并验证其荧光寿命测量的准确性和精确性。它还提出了将该技术扩展为成像光谱法的方法。使用二向色分束器和滤光片的串联阵列来记录四个不同光谱带的TRFS衰减曲线,其中生物组织通常呈现最大荧光发射,即390、452、542和629 nm。通过使用通过200μm直径的长度为1、10、19和28 m的多模光纤的传输延迟在时间上分隔每个发射通道。使用Laguerre展开反卷积算法来补偿大直径光纤固有的模态色散以及检测器和数字化仪的有限带宽。发现该系统高效且快速,分别需要几纳焦的激光脉冲能量和每点测量<1 ms的时间来检测组织自发荧光成分。使用寿命在0.8-7 ns范围内的有机和生物发色团用于系统验证,并且有机荧光团的测量寿命与文献报道的值相差不到10%。通过在2D平面中光栅扫描单根光纤探针来记录玻璃毛细管中包含的有机染料溶液的多光谱寿命图像,以验证该系统是否为成像工具。测量了寿命测量的可变性,表明系统提供了可再现的结果,标准偏差小于50 ps。 ms-TRFS是一种紧凑的设备,可以对低量子效率的亚纳秒级荧光团进行快速,准确和精确的多光谱时间分辨荧光寿命测量。

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