Abstract
Abstract
Fluorescence microscopy remains indispensable for specific organelle imaging but suffers from photobleaching and phototoxicity. Here, we introduce a strong physics-constrained deep learning strategy to generate virtual fluorescence images of mitochondria directly from quantitative phase imaging. By constructing a dual-mode system that captures quantitative phase and fluorescence images in situ with subpixel registration, we impose a strong physical prior that ensures native subpixel alignment and data fidelity. This native spatial constraint significantly reduces the burden on the neural network, enabling high-confidence, label-free identification of mitochondria from phase data alone. Once trained, the model bypasses the need for fluorescent labeling, eliminating photodamage and facilitating long-term dynamic studies. The trained network exhibits remarkable generalization capability, making it highly practical for routine use and paving the way for truly nondestructive, high-content imaging of subcellular structures in living cells.
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@article{Yh2026Subpixel,
title = {Subpixel-registered dual-mode imaging enables label-free inference of mitochondria in living cells},
author = {Ma Yh and Haixin Xue and Taiqiang Dai and X D Liu and Qilong Tan and zhanqiang Li and Lan Ma},
journal = {Applied Physics Letters},
year = {2026},
doi = {10.1063/5.0338419},
url = {https://doi.org/10.1063/5.0338419}
}
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