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Updated: Sep 10, 2025

Photodynamic Therapy with Blended Conducting Polymer/Fullerene Nanoparticle Photosensitizers
Published on: October 28, 2015
Organic photosensitizers: from molecular design to phototheranostics
Tian Zhang1, Xinyu Qu1, Jinjun Shao1
1State Key Laboratory of Flexible Electronics (LoFE) & Institute of Advanced Materials (IAM), School of Flexible Electronics (Future Technologies), Nanjing Tech University, Nanjing 211816, China. iamjjshao@njtech.edu.cn.
Abstract:
Photodynamic therapy (PDT) has emerged as a highly promising approach for tumor treatment, owing to its remarkable spatiotemporal precision and non-invasive characteristics. Nevertheless, the clinical translation of conventional organic photosensitizers remains constrained by inherent limitations, including a low photosensitization effect, limited reactive oxygen species (ROS) production in a hypoxic tumor microenvironment (TME), restricted tissue penetration depth, and inefficient tumor-targeting. To address these challenges, this review examines molecular engineering strategies through rational structure design, focusing on five critical aspects: (i) to promote the intersystem crossing (ISC) process by introducing heavy atoms, designing photosensitizers with a twisted conformation structure or polymerization for amplified ROS generation; (ii) to conquer tumor hypoxia via construction of type I photosensitizers, fractional photosensitizers and other radical-generating photosensitizers; (iii) to excite with near-infrared light via constructing a D-A structure, fabricating J-aggregates, or utilizing two-photon excitation to improve the penetration depth; (iv) to target tumor tissues through conjugating photosensitizers with tumor-specific ligands or gene-encoded fragments to achieve tumor-targeted therapy; and (v) to reduce the off-target effect via designing TME-activatable photosensitizers. Additionally, this review highlights emerging applications in precision oncotherapy, antimicrobial therapy, and afterglow imaging diagnostics. Moreover, the perspectives and challenges of the molecular design and phototheranostics of organic photosensitizers are discussed. This review aims to bridge fundamental research with clinical translation challenges, providing strategic insights for advancing next-generation organic photosensitizers.
Insights
Molecular engineering enhances organic photosensitizers for photodynamic therapy (PDT), overcoming limitations like hypoxia and poor targeting. This review details strategies for improved reactive oxygen species (ROS) generation and tumor specificity in cancer treatment.
Area of Science:
- Materials Science
- Oncology
- Photochemistry
Background:
- Photodynamic therapy (PDT) shows promise for cancer treatment due to its precision and non-invasive nature.
- Conventional organic photosensitizers face challenges including low efficacy in hypoxic tumors, limited tissue penetration, and inefficient targeting.
Purpose of the Study:
- To review molecular engineering strategies for designing advanced organic photosensitizers.
- To address limitations of current photosensitizers for improved photodynamic therapy (PDT) and phototheranostics.
Main Methods:
- Rational structure design focusing on promoting intersystem crossing (ISC) for enhanced reactive oxygen species (ROS) generation.
- Strategies to overcome tumor hypoxia, improve near-infrared (NIR) light penetration, and achieve tumor-specific targeting via ligand conjugation.
- Development of tumor microenvironment (TME)-activatable photosensitizers to minimize off-target effects.
Main Results:
- Molecular engineering can significantly boost ROS production and overcome tumor hypoxia.
- Near-infrared excitation and targeted delivery strategies improve therapeutic depth and specificity.
- TME-activatable designs reduce off-target toxicity, enhancing safety and efficacy.
Conclusions:
- Advanced molecular design is crucial for overcoming current limitations in organic photosensitizers for PDT.
- These strategies offer significant potential for next-generation phototheranostics in precision oncotherapy and antimicrobial applications.
- Bridging fundamental research with clinical translation is key to advancing organic photosensitizer development.
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