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基于数字微镜器件的半自动实时可编程荧光寿命分割

Semi-autonomous real-time programmable fluorescence lifetime segmentation with a digital micromirror device.

作者信息

Aluko Justin, Perrin Camille, Devauges Viviane, Nedbal Jakub, Poland Simon, Matthews Daniel, Whittaker Janek, Ameer-Beg Simon

出版信息

Opt Express. 2018 Nov 26;26(24):31055-31074. doi: 10.1364/OE.26.031055.

DOI:10.1364/OE.26.031055
PMID:30650697
Abstract

Time-correlated single-photon counting (TCSPC) is the gold standard for performing lifetime spectroscopy in biological assays. Traditional fluorescence lifetime imaging (FLIM) using laser scanning microscopes are inherently slow due to point scanning all pixels in the field-of-view. Wide-field implementations of TCSPC spectroscopy using microchannel plates benefit from particularly fast acquisition times at the expense of temporal resolution, and are fundamentally limited by photon counting rates. Here, we introduce programmable lifetime imaging (PLI), combining the advantages of wide-field imaging using total internal reflection excitation with state-of-the-art TCSPC detector technology for accurate lifetime determination in an object-oriented manner using a digital micromirror device (DMD). The fluorescent emission is projected onto the DMD to facilitate the sequential segmentation of fluorescence from individual objects in the field-of-view, allowing for both image acquisition and fluorescence lifetime determination of the assay. The sensitivity of PLI is demonstrated by manually segmenting fluorescence from fixed cell assays. We also demonstrate an automated implementation of PLI, using a camera as a feedback mechanism to segment fluorescence produced by emitting objects of interest in the imaging field-of-view, highlighting the advantages of measurement only in areas where valuable information exists. As a result, PLI is able to reduce acquisition time of fluorescence lifetime data by at least an order of magnitude compared to laser scanning implementations.

摘要

时间相关单光子计数(TCSPC)是在生物检测中进行寿命光谱分析的金标准。使用激光扫描显微镜的传统荧光寿命成像(FLIM)由于要对视野中的所有像素进行逐点扫描,本质上速度较慢。使用微通道板的TCSPC光谱的宽场实现方式受益于特别快的采集时间,但以时间分辨率为代价,并且从根本上受到光子计数率的限制。在此,我们引入了可编程寿命成像(PLI),它结合了使用全内反射激发的宽场成像的优点与最先进的TCSPC探测器技术,以便使用数字微镜器件(DMD)以面向对象的方式准确测定寿命。荧光发射被投射到DMD上,以促进对视野中单个物体的荧光进行顺序分割,从而实现图像采集和检测的荧光寿命测定。通过手动分割固定细胞检测中的荧光来证明PLI的灵敏度。我们还展示了PLI的自动化实现方式,使用相机作为反馈机制来分割成像视野中感兴趣的发射物体产生的荧光,突出了仅在存在有价值信息的区域进行测量的优点。结果,与激光扫描实现方式相比,PLI能够将荧光寿命数据的采集时间至少减少一个数量级。

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