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Molecular Determinants for Photodynamic Therapy Resistance and Improved Photosensitizer Delivery in Glioma
David Aebisher1, Paweł Woźnicki2, Magdalena Czarnecka-Czapczyńska3
1Department of Photomedicine and Physical Chemistry, Medical College of The Rzeszów University, 35-310 Rzeszów, Poland.
Abstract:
Gliomas account for 24% of all the primary brain and Central Nervous System (CNS) tumors. These tumors are diverse in cellular origin, genetic profile, and morphology but collectively have one of the most dismal prognoses of all cancers. Work is constantly underway to discover a new effective form of glioma therapy. Photodynamic therapy (PDT) may be one of them. It involves the local or systemic application of a photosensitive compound-a photosensitizer (PS)-which accumulates in the affected tissues. Photosensitizer molecules absorb light of the appropriate wavelength, initiating the activation processes leading to the formation of reactive oxygen species and the selective destruction of inappropriate cells. Research focusing on the effective use of PDT in glioma therapy is already underway with promising results. In our work, we provide detailed insights into the molecular changes in glioma after photodynamic therapy. We describe a number of molecules that may contribute to the resistance of glioma cells to PDT, such as the adenosine triphosphate (ATP)-binding cassette efflux transporter G2, glutathione, ferrochelatase, heme oxygenase, and hypoxia-inducible factor 1. We identify molecular targets that can be used to improve the photosensitizer delivery to glioma cells, such as the epithelial growth factor receptor, neuropilin-1, low-density lipoprotein receptor, and neuropeptide Y receptors. We note that PDT can increase the expression of some molecules that reduce the effectiveness of therapy, such as Vascular endothelial growth factor (VEGF), glutamate, and nitric oxide. However, the scientific literature lacks clear data on the effects of PDT on many of the molecules described, and the available reports are often contradictory. In our work, we highlight the gaps in this knowledge and point to directions for further research that may enhance the efficacy of PDT in the treatment of glioma.
Insights
Photodynamic therapy (PDT) shows promise for treating aggressive brain gliomas. This study details molecular changes, resistance factors, and potential targets to improve PDT efficacy against glioma cells.
Area of Science:
- Neuro-oncology
- Photodynamic Therapy
- Molecular Biology
Background:
- Gliomas are aggressive primary brain tumors with poor prognoses.
- Photodynamic therapy (PDT) offers a potential treatment strategy by selectively destroying tumor cells.
- Understanding molecular responses to PDT is crucial for optimizing glioma treatment.
Purpose of the Study:
- To investigate molecular alterations in glioma following photodynamic therapy.
- To identify molecules contributing to glioma cell resistance to PDT.
- To pinpoint molecular targets for enhancing photosensitizer delivery and PDT effectiveness.
Main Methods:
- Analysis of molecular changes in glioma cells after PDT exposure.
- Review of literature on molecules affecting PDT efficacy and photosensitizer delivery.
- Identification of potential therapeutic targets and resistance mechanisms.
Main Results:
- Several molecules (e.g., ATP-binding cassette transporter G2, glutathione, ferrochelatase, heme oxygenase, hypoxia-inducible factor 1) may confer PDT resistance.
- Potential targets for improved photosensitizer delivery include EGFR, neuropilin-1, LDL receptor, and neuropeptide Y receptors.
- PDT may increase expression of VEGF, glutamate, and nitric oxide, potentially reducing therapeutic effectiveness.
Conclusions:
- PDT is a promising glioma therapy, but its efficacy is influenced by complex molecular interactions.
- Further research is needed to clarify contradictory findings and address knowledge gaps regarding PDT's molecular effects.
- Identifying and targeting specific molecules can enhance photosensitizer delivery and overcome resistance, improving PDT outcomes for glioma patients.
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