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Fluorescence Resonance Energy Transfer Imaging by Maximum Likelihood Estimation

机译:荧光共振能量转移成像通过最大似然估计

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Fluorescence resonance energy transfer (FRET) is a fluorescence microscope imaging process involving nonradiative energy transfer between two fluorophores (the donor and the acceptor). FRET is used to detect the chemical interactions and, in some cases, measure the distance between molecules. Existing approaches do not always well compensate for bleed-through in excitation, cross-talk in emission detection and electronic noise in image acquisition. We have developed a system to automatically search for maximum-likelihood estimates of the FRET image, donor concentration and acceptor concentration. It also produces other system parameters, such as excitation/emission filter efficiency and FRET conversion factor. The mathematical model is based upon a Poisson process since the CCD camera is a photon-counting device. The main advantage of the approach is that it automatically compensates for bleed-through and crosstalk degradations. Tests are presented with synthetic images and with real data referred to as positive and negative controls, where FRET is known to occur and to not occur, respectively. The test results verify the claimed advantages by showing consistent accuracy in detecting FRET and by showing improved accuracy in calculating FRET efficiency.
机译:荧光共振能量转移(FRET)是荧光显微镜成像过程,涉及两种荧光团(供体和受体)之间的非接种能量转移。 FRET用于检测化学相互作用,并且在某些情况下,测量分子之间的距离。现有方法在图像采集中的发射检测和电子噪声中的激发中并不总是弥补渗透。我们开发了一种系统,用于自动搜索荧光图像的最大似然估计,供体浓度和受体浓度。它还产生其他系统参数,例如激励/发射滤波器效率和FRET转换因子。数学模型基于泊松过程,因为CCD相机是光子计数设备。该方法的主要优点是它自动补偿渗透和串扰下降。测试用合成图像呈现,并且具有称为正和负控制的实际数据,其中众所周知,分别发生符号并不会发生。测试结果通过在检测尺寸方面表明一致的精度以及通过在计算FRET效率方面提高准确度来验证所要求的优点。

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