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具有相同光谱特征的多种荧光团单光子发射器数量的估计。

Estimation of the number of single-photon emitters for multiple fluorophores with the same spectral signature.

作者信息

Li Wenchao, Li Shuo, Brown Timothy C, Sun Qiang, Wang Xuezhi, Yakovlev Vladislav V, Kealy Allison, Moran Bill, Greentree Andrew D

出版信息

ArXiv. 2024 Feb 12:arXiv:2306.05614v2.

Abstract

Fluorescence microscopy is of vital importance for understanding biological function. However most fluorescence experiments are only qualitative inasmuch as the absolute number of fluorescent particles can often not be determined. Additionally, conventional approaches to measuring fluorescence intensity cannot distinguish between two or more fluorophores that are excited and emit in the same spectral window, as only the total intensity in a spectral window can be obtained. Here we show that, by using photon number resolving experiments, we are able to determine the number of emitters and their probability of emission for a number of different species, all with the same measured spectral signature. We illustrate our ideas by showing the determination of the number of emitters per species and the probability of photon collection from that species, for one, two, and three otherwise unresolvable fluorophores. The convolution Binomial model is presented to model the counted photons emitted by multiple species. And then the Expectation-Maximization (EM) algorithm is used to match the measured photon counts to the expected convolution Binomial distribution function. In applying the EM algorithm, to leverage the problem of being trapped in a sub-optimal solution, the moment method is introduced in finding the initial guess of the EM algorithm. Additionally, the associated Cram'er-Rao lower bound is derived and compared with the simulation results.

摘要

荧光显微镜对于理解生物功能至关重要。然而,大多数荧光实验只是定性的,因为通常无法确定荧光颗粒的绝对数量。此外,传统的测量荧光强度的方法无法区分在同一光谱窗口中被激发和发射的两个或更多荧光团,因为只能获得光谱窗口中的总强度。在这里,我们表明,通过使用光子数分辨实验,我们能够确定多种不同物种的发射体数量及其发射概率,所有这些物种都具有相同的测量光谱特征。我们通过展示对于一个、两个和三个原本无法分辨的荧光团,确定每个物种的发射体数量以及从该物种收集光子的概率来说明我们的想法。提出了卷积二项式模型来模拟多种物种发射的计数光子。然后使用期望最大化(EM)算法将测量的光子计数与预期的卷积二项式分布函数进行匹配。在应用EM算法时,为了克服陷入次优解的问题,在寻找EM算法的初始猜测时引入了矩量法。此外,推导了相关的克拉美 - 罗下界并与模拟结果进行比较。

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