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Title: Multi-parametric photoacoustic elastomicroscopy : quantitative elasticity mapping and microstructural analysis for early-stage hepatic fibrosis detection
Authors: Pang, W 
Zhou, Q
Qiu, Y
Huang, H 
Chen, J
Zhong, T 
Zhou, Y 
Nie, L
Lai, P 
Issue Date: Oct-2025
Source: Journal of physics : photonics, Oct. 2025, v. 7, no. 4, 045038
Abstract: Early detection of hepatic fibrosis remains a critical unmet need due to the limited sensitivity of conventional elastography in capturing microstructural and biomechanical changes. In this study, we developed photoacoustic elastomicroscopy (PAEM), a multi-parametric imaging platform that synergizes high-resolution photoacoustic microscopy with time-of-flight (ToF)-based elastography to quantitatively map tissue stiffness and visualize fibrotic microarchitecture. Validated using PDMS phantoms and a drug-induced murine fibrosis model, PAEM can detect early-stage fibrosis through microstructural biomarkers—pseudo-lobule formation and crevice-area expansion, with a relatively high area under the curve (AUC) > 0.91. However, architectural ambiguity in advanced fibrotic stages gradually reduces PAEM’s diagnostic accuracy, necessitating complementary reliance on ToF-based measurements for auxiliary staging. In our results, ToF-based elasticity biomarkers revealed progressive stiffness increases with a significant velocity increase of 3.7% in 1-week fibrosis. Furthermore, experimental PAEM outperformed shear wave elastography (SWE) in early-stage sensitivity by identifying significant stiffness changes, quantitatively 7-fold greater velocity differential sensitivity than SWE (5.39% vs. 0.77% change), between healthy and 3-week fibrotic liver tissue. All-stage fibrosis exhibited a considerable stiffness rise (AUC > 0.95), correlating strongly with histopathological severity and serum examination. By integrating structural and mechanical biomarkers, PAEM offers a translational tool for early diagnosis, longitudinal monitoring, and staging of hepatic fibrosis, which can potentially be extended for wider applications in tumor margin delineation and other fibrotic pathologies in soft tissue.
Keywords: Elastic sensing and measurement
Liver fibrosis
Multi-parametric evaluation
Photoacoustic elastomicroscopy (PAEM)
Time of flight (ToF)
Tissue stiffness
Tumor margins
Publisher: Institute of Physics Publishing Ltd.
Journal: Journal of physics : photonics 
EISSN: 2515-7647
DOI: 10.1088/2515-7647/ae0541
Rights: © 2025 The Author(s). Published by IOP Publishing Ltd.
Original content from this work may be used under the terms of the Creative Commons Attribution 4.0 license (https://creativecommons.org/licenses/by/4.0/). Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI.
The following publication Pang, W., Zhou, Q., Qiu, Y., Huang, H., Chen, J., Zhong, T., ... & Lai, P. (2025). Multi-parametric photoacoustic elastomicroscopy: quantitative elasticity mapping and microstructural analysis for early-stage hepatic fibrosis detection. Journal of Physics: Photonics, 7(4), 045038 is available at https://doi.org/10.1088/2515-7647/ae0541.
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