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Switchable Acoustic and Optical Resolution Photoacoustic Microscopy for In Vivo Small-animal Blood Vasculature Imaging
Published on: June 26, 2017
Antiaromaticity-Based General Molecular Design of Activatable Near-Infrared Photoacoustic Probes with High Acoustic
Bo Xiang1, Kui Yan1, Ying Zhang1
1Department of Chemistry, State Key Laboratory of Molecular Engineering of Polymers, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials and iChem, Shanghai Wusong Laboratory of Materials Science, Fudan University, Shanghai 200433, China.
Abstract:
Photoacoustic (PA) imaging offers high spatial resolution and deep tissue penetration, and the development of activatable PA probes has greatly expanded its potential for detecting disease-associated molecular biomarkers. Optimization of the probe performance has long been a central challenge. Recently, the proposed acoustic loudness factor (ALF = ε × k nr) established that strong absorption and ultrafast nonradiative decay are key for maximizing PA output, yet a general molecular design strategy under this framework remains elusive. Here we report PhAF, an antiaromatic fluorene dye platform in which ground-state antiaromaticity and excited-state aromaticity reversal under Baird's rule induce strong vibronic coupling and naturally high k nr. PhAF exhibits maximal absorption at 950 nm, an ultrashort 3.37 ps lifetime, and a high ALF of 7.25 × 1015 M-1 cm-1 s-1, while maintaining excellent stability in aqueous and biological media. Masking the aniline donor as an amide yielded nitroreductase-responsive PhAF-N and peroxynitrite-responsive PhAF-R, both showing robust in vivo imaging of tumor hypoxia and drug-induced liver injury. This work establishes a molecular foundation for designing high-performance activatable PA probes for future theranostic applications.

