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Updated: Jul 26, 2026

Photodynamic Therapy with Blended Conducting Polymer/Fullerene Nanoparticle Photosensitizers
Published on: October 28, 2015
Spatial multiple distortion as a facile strategy boosting the efficacy of photothermal and photodynamic therapy
Jiawen Jiang1,2, Haoshu Xu2,3, Wenjing Li2
1Affiliated Hospital of Shandong Second Medical University, Shandong Second Medical University, Weifang, Shandong, People's Republic of China.
Abstract:
Phototherapy, distinguished by its exceptional selectivity, noninvasive nature, and negligible drug resistance, has emerged as a promising antibiotic-free antimicrobial approach. However, the therapeutic efficacy of organic photosensitizers (PSs), particularly porphyrin-based systems, is significantly limited by strong π-π stacking-induced self-aggregation, an inherent challenge arising from their extended conjugated structures. To address this limitation, we developed a spatial three-dimensional (3D) multiple-twisted strategy to mitigate photoactivity quenching in porphyrin-based PSs. Leveraging this approach, we designed Crown-TTEP, a crown-ether-based porous organic polymer (POP) with imidazole linkages, synthesized via polymerization of twisted tetra-1,4-di(4-aldehyde phenyl)phenyl-porphyrin (TTEP) and crown-shaped crown ether. This unique architecture enables synergistic crown/photothermal/photodynamic therapy (PTT/PDT). The multiple-twisted 3D structure of Crown-TTEP effectively suppresses aggregation-induced quenching, significantly enhancing photosensitizing activity. In vitro and in vivo studies confirmed broad-spectrum antimicrobial efficacy of Crown-TTEP, demonstrating outstanding additive antibacterial activity against Gram-positive (G+) and Gram-negative (G-) pathogens under NIR irradiation. The synergistic interplay of PTT/PDT and the crown skeleton not only ensures potent bactericidal effects but also accelerates the healing of infected wounds. This work establishes a design paradigm for enhancing the phototherapeutic performance of POP-based antimicrobial agents, offering a promising strategy for next-generation antibacterial treatments.
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