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Updated: Sep 26, 2026

An In Vitro Approach to Photodynamic Therapy
Published on: August 17, 2018
Thiazolo[5,4-d]thiazole π-bridge engineering of AIE photosensitizers toward mitochondria-localized photodynamic
Shunzhi Gou1, Hongchao Wang1, Changlan Luo1
1School of Pharmacy, Key Laboratory of Basic Pharmacology of Ministry of Education and Joint International Research Laboratory of Ethnomedicine of Ministry of Education, Guizhou International Science & Technology Cooperation Base of Medical Optical Theranostics Research, New Drug Discovery and Evaluation Center for International Cooperation and Disciplinary Innovation ("111 Center"), Zunyi Medical University, Zunyi, Guizhou 563003, PR China.
Abstract:
Aggregation-induced emission (AIE) photosensitizers have emerged as promising candidates for photodynamic therapy (PDT) because they can overcome aggregation-caused quenching and retain strong fluorescence in biological environments. However, rational π-bridge engineering for simultaneously optimizing photophysical properties and reactive oxygen species (ROS) generation remains insufficiently explored. Herein, we report a series of thiazolo[5,4-d]thiazole (TzTz)-bridged AIE photosensitizers constructed within donor-π-acceptor frameworks. The rigid and electron-deficient TzTz unit, together with donor strengthening and acceptor cationization, modulates the electronic structures of the molecules, enhances intramolecular charge transfer, and contributes to ROS-generating capability. Among the synthesized compounds, MTPA-TzTz-TPP exhibited pronounced AIE characteristics with strong red fluorescence emission at 641 nm in the aggregated state and efficient light-triggered ROS generation. Confocal imaging demonstrated that MTPA-TzTz-TPP selectively accumulated in mitochondria, showing a Pearson's correlation coefficient of 0.84 with the mitochondrial tracker. In vitro studies showed that MTPA-TzTz-TPP possessed minimal dark toxicity but significant phototoxicity toward 4 T1 tumor cells, accompanied by a marked intracellular ROS burst and effective light-induced cell death. Furthermore, intratumoral administration of MTPA-TzTz-TPP in a 4 T1 tumor-bearing mouse model led to pronounced tumor growth inhibition under light irradiation without obvious systemic toxicity. This work highlights TzTz π-bridge engineering as an effective molecular design strategy for developing high-performance AIE photosensitizers and identifies TPP functionalization as an effective approach for achieving mitochondria-localized photodynamic therapy.
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