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Promising G-Quadruplex-Targeted Dibenzoquinoxaline Type-1 Photosensitizer Triggers DNA Damage in Triple-Negative
Xiao Zhang1, Jingxin Wang1, Ming-Hao Hu1
1Nation-Regional Engineering Lab for Synthetic Biology of Medicine, International Cancer Center, School of Pharmacy, Shenzhen University Medical School, Shenzhen 518060, China.
Abstract:
G-quadruplexes (G4s) are potential drug targets in cancer treatment. However, the G4-targeted ligands seem to lack sufficient selectivity between tumors and normal tissues, appealing for a new modified anticancer strategy on the basis of them. Type-1 photodynamic therapy (PDT) is a promising strategy possessing excellent spatiotemporal precision for solid tumors with a hypoxic microenvironment. However, type-1 photosensitizers that target G4s and induce in situ photodamage have never been previously reported. In this study, we reported a promising type-1 photosensitizer based on a G4-targeted, high-contrast fluorescent ligand (TR2). The subsequent studies demonstrated that TR2 could transfer from lysosomes to nuclei and induce elevated G4 formation as well as DNA damage upon irradiation. Notably, it was observed that TR2 may not activate DNA damage repair machinery upon irradiation, suggesting a durable, strong effect on inducing DNA damage. Consequently, light-irradiated TR2 exhibited excellent photocytotoxicity on triple-negative breast cancer cell proliferation (at nanomolar concentration) and showed obvious inhibition on the growth of three-dimensional (3D) tumor spheroids. Finally, RNA-seq analysis demonstrated that TR2-mediated PDT may have a negative impact on enhancing the DNA damage repair machinery and may activate the antitumor immunity pathways. Overall, this study provided a promising chemical tool for image-guided PDT.
Insights
Researchers developed a novel G-quadruplex-targeting photosensitizer (TR2) for type-1 photodynamic therapy (PDT). TR2 induces DNA damage and inhibits cancer growth, offering a new strategy for image-guided cancer treatment.
Area of Science:
- Medicinal Chemistry
- Cancer Biology
- Photodynamic Therapy
Background:
- G-quadruplexes (G4s) are promising cancer drug targets.
- Existing G4 ligands lack tumor selectivity.
- Type-1 photodynamic therapy (PDT) offers precise tumor targeting.
Purpose of the Study:
- To develop a novel type-1 photosensitizer targeting G4s.
- To evaluate its efficacy in cancer treatment.
- To explore its mechanism of action and impact on DNA repair and immunity.
Main Methods:
- Synthesis of a G4-targeted fluorescent ligand (TR2).
- Cellular uptake, localization, and DNA damage assays.
- Photocytotoxicity and 3D tumor spheroid inhibition studies.
- RNA sequencing (RNA-seq) for pathway analysis.
Main Results:
- TR2 effectively targets G4s and induces DNA damage upon irradiation.
- TR2 exhibits potent photocytotoxicity against triple-negative breast cancer cells.
- TR2 inhibits tumor spheroid growth and may suppress DNA damage repair.
- TR2-mediated PDT activates antitumor immunity pathways.
Conclusions:
- TR2 is a promising G4-targeting type-1 photosensitizer for image-guided PDT.
- TR2 demonstrates significant anticancer effects with potential to enhance immune response.
- This approach offers a novel strategy for cancer therapy with improved selectivity.
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