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Updated: Jul 5, 2025

Photodynamic Therapy with Blended Conducting Polymer/Fullerene Nanoparticle Photosensitizers
Published on: October 28, 2015
System for Self-excited Targeted Photodynamic Therapy Based on the Multimodal Protein DARP-NanoLuc-SOPP3
E I Shramova1, A Yu Frolova1, V P Filimonova1
1Shemyakin-Ovchinnikov Institute of Bioorganic Chemistry, Moscow, Russian Academy of science, Moscow, 117997 Russian Federation.
Abstract:
Despite the significant potential of photodynamic therapy (PDT) as a minimally invasive treatment modality, the use of this method in oncology has remained limited due to two serious problems: 1) limited penetration of the excitation light in tissues, which makes it impossible to affect deep-seated tumors and 2) use of chemical photosensitizers that slowly degrade in the body and cause photodermatoses and hyperthermia in patients. To solve these problems, we propose a fully biocompatible targeted system for PDT that does not require an external light source. The proposed system is based on bioluminescent resonance energy transfer (BRET) from the oxidized form of the luciferase substrate to the photosensitizing protein SOPP3. The BRET-activated system is composed of the multimodal protein DARP-NanoLuc-SOPP3, which contains a BRET pair NanoLuc-SOPP3 and a targeting module DARPin. The latter provides the interaction of the multimodal protein with tumors overexpressing tumor-associated antigen HER2 (human epidermal growth factor receptor type II). In vitro experiments in a 2D monolayer cell culture and a 3D spheroid model have confirmed HER2-specific photo-induced cytotoxicity of the system without the use of an external light source; in addition, experiments in animals with subcutaneous HER2-positive tumors have shown selective accumulation of DARP-NanoLuc-SOPP3 on the tumor site. The fully biocompatible system for targeted BRET-induced therapy proposed in this work makes it possible to overcome the following limitations: 1) the need to use an external light source and 2) the side phototoxic effect from aberrant accumulation of chemical photosensitizers. The obtained results demonstrate that the fully protein-based self-excited BRET system has a high potential for targeted PDT.
Insights
This study introduces a novel, self-illuminating protein system for photodynamic therapy (PDT) that targets HER2-positive tumors. This breakthrough eliminates the need for external light sources and reduces side effects, offering a promising advancement in cancer treatment.
Area of Science:
- Biochemistry
- Biotechnology
- Oncology
Background:
- Photodynamic therapy (PDT) faces limitations in oncology due to poor light penetration and toxic chemical photosensitizers.
- Current PDT methods struggle to treat deep-seated tumors and can cause adverse effects like photodermatoses and hyperthermia.
Purpose of the Study:
- To develop a fully biocompatible, targeted system for PDT that bypasses the need for external light sources.
- To overcome the limitations of conventional PDT by utilizing bioluminescence resonance energy transfer (BRET) for targeted cancer treatment.
Main Methods:
- Engineered a multimodal protein (DARP-NanoLuc-SOPP3) incorporating a BRET pair (NanoLuc-SOPP3) and a targeting module (DARPin) specific for HER2.
- Validated HER2-specific, light-independent photo-induced cytotoxicity in vitro using 2D and 3D cell models.
- Assessed in vivo tumor targeting and accumulation in animal models with HER2-positive tumors.
Main Results:
- Demonstrated HER2-specific cytotoxicity without external light activation in vitro.
- Confirmed selective accumulation of the DARP-NanoLuc-SOPP3 system at tumor sites in vivo.
- Showcased the system's ability to overcome limitations of external light sources and chemical photosensitizer side effects.
Conclusions:
- The fully protein-based, self-excited BRET system shows significant potential for targeted PDT.
- This innovative approach offers a safer and more effective alternative for treating HER2-positive cancers.
- The developed system represents a major advancement in overcoming key challenges in photodynamic therapy.
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