A cationization strategy to simultaneously enhance reactive oxygen species generating and mitochondria targeting ability for enhanced photodynamic therapy

Abstract

Mitochondria-targeted photodynamic therapy (PDT) circumvents the short lifetime and action radius limitation of reactive oxygen species (ROS) and greatly improves the anticancer PDT efficacy. However, current approaches require different molecular engineering strategies to separately improve ROS production and introduce mitochondria targeting ability, which involve tedious synthetic procedures. Herein, we report a facile one-step cationization strategy that simultaneously improve the ROS generation efficiency and introduce mitochondria targeting ability for enhanced PDT. This strategy is demonstrated with AIE-active photosensitizers ITPAPy, where cationization transforms the pyridine ring in ITPAPy into a positively charged pyridinium salt in ITPAPyI. Cationizaiton promotes intramolecular charge separation and enhances intersystem crossing without compromising the AIE properties, and ITPAPyI generates higher levels of ROS over its neutral counterpart ITPAPy. Moreover, the cationic ITPAPyI profoundly enriched at mitochondrial membrane of cancer cells, while the neutral ITPAPy mainly accumulated in lysosomes. Since mitochondria are the main target of ROS, ITPAPyI causes massive oxidative damage to mitochondria and promote apoptosis, showing a more effective PDT effect. This cationic molecular engineering strategy establishes an attractive paradigm for designing photosensitizers with concurrent ROS enhancement and mitochondria-targeting capabilities, paving the way for highly efficient PDT applications.

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Article information

Article type
Paper
Submitted
22 May 2025
Accepted
20 Aug 2025
First published
21 Aug 2025

J. Mater. Chem. B, 2025, Accepted Manuscript

A cationization strategy to simultaneously enhance reactive oxygen species generating and mitochondria targeting ability for enhanced photodynamic therapy

C. Ji, Y. Huang, B. Z. Tang and G. Feng, J. Mater. Chem. B, 2025, Accepted Manuscript , DOI: 10.1039/D5TB01224D

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