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使用光谱分割和数字微镜空间照明器对微观荧光寿命图像进行全局分析。

Global analysis of microscopic fluorescence lifetime images using spectral segmentation and a digital micromirror spatial illuminator.

作者信息

Bednarkiewicz Artur, Whelan Maurice P

机构信息

European Commission Joint Research Center, Institute of Health and Customer Protection, T.P.202 Via E. Fermi 2749, I-21027 Ispra (VA), Italy.

出版信息

J Biomed Opt. 2008 Jul-Aug;13(4):041316. doi: 10.1117/1.2950308.

Abstract

Fluorescence lifetime imaging (FLIM) is very demanding from a technical and computational perspective, and the output is usually a compromise between acquisition/processing time and data accuracy and precision. We present a new approach to acquisition, analysis, and reconstruction of microscopic FLIM images by employing a digital micromirror device (DMD) as a spatial illuminator. In the first step, the whole field fluorescence image is collected by a color charge-coupled device (CCD) camera. Further qualitative spectral analysis and sample segmentation are performed to spatially distinguish between spectrally different regions on the sample. Next, the fluorescence of the sample is excited segment by segment, and fluorescence lifetimes are acquired with a photon counting technique. FLIM image reconstruction is performed by either raster scanning the sample or by directly accessing specific regions of interest. The unique features of the DMD illuminator allow the rapid on-line measurement of global good initial parameters (GIP), which are supplied to the first iteration of the fitting algorithm. As a consequence, a decrease of the computation time required to obtain a satisfactory quality-of-fit is achieved without compromising the accuracy and precision of the lifetime measurements.

摘要

从技术和计算角度来看,荧光寿命成像(FLIM)要求很高,其输出通常是采集/处理时间与数据准确性和精度之间的折中。我们提出了一种通过使用数字微镜器件(DMD)作为空间照明器来采集、分析和重建微观FLIM图像的新方法。第一步,由彩色电荷耦合器件(CCD)相机采集全场荧光图像。进一步进行定性光谱分析和样本分割,以便在空间上区分样本上光谱不同的区域。接下来,逐段激发样本的荧光,并采用光子计数技术获取荧光寿命。通过对样本进行光栅扫描或直接访问特定感兴趣区域来进行FLIM图像重建。DMD照明器的独特特性允许快速在线测量全局良好初始参数(GIP),这些参数被提供给拟合算法的第一次迭代。因此,在不影响寿命测量准确性和精度的情况下,实现了获得令人满意的拟合质量所需计算时间的减少。

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