Artificial Neural Network (ANN)-Based Determination of Fractional Contributions from Mixed Fluorophores using Fluorescence Lifetime Measurements

被引:0
作者
Alexander Netaev
Nicolas Schierbaum
Karsten Seidl
机构
[1] Fraunhofer Institute for Microelectronic Circuits and Systems,Department of Electronic Components and Circuits and Center for Nanointegration Duisburg
[2] University Duisburg-Essen,Essen (CENIDE)
来源
Journal of Fluorescence | 2024年 / 34卷
关键词
Fractional contributions; Fluorescence lifetime; Artificial neural networks ; Monte Carlo;
D O I
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中图分类号
学科分类号
摘要
Here we present an artificial neural network (ANN)-approach to determine the fractional contributions Pi from fluorophores to a multi-exponential fluorescence decay in time-resolved lifetime measurements. Conventionally, Pi are determined by extracting two parameters (amplitude and lifetime) for each underlying mono-exponential decay using non-linear fitting. However, in this case parameter estimation is highly sensitive to initial guesses and weighting. In contrast, the ANN-based approach robustly gives the Pi without knowledge of amplitudes and lifetimes. By experimental measurements and Monte-Carlo simulations, we comprehensively show that accuracy and precision of Pi determination with ANNs and hence the number of distinguishable fluorophores depend on the fluorescence lifetimes’ differences. For mixtures of up to five fluorophores, we determined the minimum uniform spacing Δτmin between lifetimes to obtain fractional contributions with a standard deviation of 5%. In example, five lifetimes can be distinguished with a respective minimum uniform spacing of approx. 10 ns even when the fluorophores’ emission spectra are overlapping. This study underlines the enormous potential of ANN-based analysis for multi-fluorophore applications in fluorescence lifetime measurements.
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页码:305 / 311
页数:6
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