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Updated: Aug 5, 2026

A Bright NIR-II Fluorescence Probe for Vascular and Tumor Imaging
Published on: March 17, 2023
Pluronic F127 engineered nanotheranostics for NIR-II fluorescence imaging and enhanced photodynamic therapy in
Li Liu1, Hongye Liao1, Jingyu Deng1
1Skin Structure and Function Key Laboratory of Luzhou, Department of Dermatology, The Affiliated Hospital, Southwest Medical University, Luzhou, Sichuan Province, China.
Abstract:
Conventional photosensitizers (PSs) are hindered by aggregation-caused quenching, limited tissue-penetration depth and off-target toxicity, which restricts their clinical translation for photodynamic therapy (PDT). To tackle these bottlenecks, we constructed an all-in-one nanotheranostic system named F127@546, where a donor-acceptor-type fluorophore (IR-546) with twisted intramolecular charge-transfer (TICT) characteristics is encapsulated within the amphiphilic polymer Pluronic F127. This rational design not only substantially improves biocompatibility but also induces a prominent emission red shift from 605 nm to 900 nm, with an emission tail extending above 1000 nm to realize high-resolution deep-tissue NIR-II imaging. Beyond its NIR-II imaging capability, F127@546 acts as an effective dual-mode photosensitizer upon 660 nm laser irradiation to concurrently produce type-I and type-II reactive oxygen species (ROS). The generated ROS dissipates mitochondrial membrane potential and further initiates melanoma cell apoptosis. In vivo experiments were performed via intratumoral injection of F127@546. We verified that its photodynamic therapy exerted a remarkable inhibitory effect on tumors, accompanied by negligible systemic toxicity. This study provides a generalizable blueprint for fabricating multifunctional nanoplatforms that combine deep tissue imaging and synergistic photodynamic therapy, advancing the development of precision-oriented anti-tumor treatment.

