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利用稀疏荧光寿命成像(SparseFLIM)克服荧光寿命成像中的光子和时空稀疏性。

Overcoming photon and spatiotemporal sparsity in fluorescence lifetime imaging with SparseFLIM.

机构信息

Key Laboratory of Optoelectronic Devices and Systems of Guangdong Province and Ministry of Education, College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen, China.

The Sixth People's Hospital of Shenzhen, Shenzhen, China.

出版信息

Commun Biol. 2024 Oct 21;7(1):1359. doi: 10.1038/s42003-024-07080-x.

Abstract

Fluorescence lifetime imaging microscopy (FLIM) provides quantitative readouts of biochemical microenvironments, holding great promise for biomedical imaging. However, conventional FLIM relies on slow photon counting routines to accumulate sufficient photon statistics, restricting acquisition speeds. Here we demonstrate SparseFLIM, an intelligent paradigm for achieving high-fidelity FLIM reconstruction from sparse photon measurements. We develop a coupled bidirectional propagation network that enriches photon counts and recovers hidden spatial-temporal information. Quantitative analysis shows over tenfold photon enrichment, dramatically improving signal-to-noise ratio, lifetime accuracy, and correlation compared to the original sparse data. SparseFLIM enables reconstructing spatially and temporally undersampled FLIM at full resolution and channel count. The model exhibits strong generalization across experimental modalities including multispectral FLIM and in vivo endoscopic FLIM. This work establishes deep learning as a promising approach to enhance fluorescence lifetime imaging and transcend limitations imposed by the inherent codependence between measurement duration and information content.

摘要

荧光寿命成像显微镜(FLIM)提供了生化微环境的定量读数,为生物医学成像带来了巨大的前景。然而,传统的 FLIM 依赖于缓慢的光子计数程序来积累足够的光子统计数据,限制了采集速度。在这里,我们展示了 SparseFLIM,这是一种从稀疏光子测量中实现高保真 FLIM 重建的智能范例。我们开发了一个耦合的双向传播网络,该网络可以丰富光子计数并恢复隐藏的时空信息。定量分析表明,与原始稀疏数据相比,光子的富集程度提高了十倍以上,显著提高了信噪比、寿命精度和相关性。SparseFLIM 可以在全分辨率和通道计数下对空间和时间欠采样的 FLIM 进行重建。该模型在包括多光谱 FLIM 和体内内窥镜 FLIM 在内的多种实验模式下表现出很强的泛化能力。这项工作确立了深度学习作为一种有前途的方法,可以增强荧光寿命成像,并超越测量持续时间和信息量之间固有依赖性所带来的限制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/53cf/11494201/296c1720561f/42003_2024_7080_Fig1_HTML.jpg

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