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Updated: Mar 2, 2026

Cytotoxic Efficacy of Photodynamic Therapy in Osteosarcoma Cells In Vitro
Published on: March 18, 2014
Photodithazine photodynamic effect on viability of 9L/lacZ gliosarcoma cell line
Leticia C Fontana1, Juliana G Pinto1, André H C Pereira1
1Laboratório de Terapia Fotodinâmica, Instituto de Pesquisa e Desenvolvimento (IP&D), Universidade do Vale do Paraíba (UNIVAP), Avenida Shishima Hifumi, 2911, São José dos Campos, SP, 12400-000, Brazil.
Abstract:
Even with the advances of conventional treatment techniques, the nervous system cancer prognosis is still not favorable to the patient which makes alternative therapies needed to be studied. Photodynamic therapy (PDT) is presented as a promising therapy, which employs a photosensitive (PS) agent, light wavelength suitable for the PS agent, and molecular oxygen, producing reactive oxygen species in order to induce cell death. The aim of this study is to observe the PDT action in gliosarcoma cell using a chlorin (Photodithazine, PDZ). The experiments were done with 9L/lacZ lineage cells, grown in a DMEM medium supplemented with 10% fetal bovine serum and 1% penicillin/streptomycin solution and put in a culture chamber at 37 °C with an atmosphere of 5% CO2. The PS agent used was the PDZ to an LED light source device (Biopdi/IRRAD-LED 660) in the 660-nm region. The location of the PS agent was analyzed by fluorescence microscopy, and cell viability was analyzed by MTT assay (mitochondrial activity), exclusion by trypan blue (cell viability), and morphological examination through an optical microscope (Leica MD 2500). In the analysis of the experiments with PDZ, there was 100% cell death at different concentrations and clear morphological differences in groups with and without treatment. Furthermore, it was observed that the photodithazine has been focused on all nuclear and cytoplasmic extension; however, it cannot be said for sure whether the location is in the inside core region or on the plasma membrane. In general, the PDZ showed a promising photosensitive agent in PDT for the use of gliosarcoma.
Insights
Photodynamic therapy (PDT) using Photodithazine (PDZ) shows promise for treating gliosarcoma. This study demonstrated 100% cell death in gliosarcoma cells treated with PDZ and light, highlighting its potential as an alternative cancer therapy.
Area of Science:
- Oncology
- Biochemistry
- Photomedicine
Background:
- Nervous system cancers, including gliosarcoma, have poor prognoses despite conventional treatments.
- Photodynamic therapy (PDT) offers a promising alternative by utilizing photosensitive agents, light, and oxygen to induce cancer cell death.
Purpose of the Study:
- To evaluate the efficacy of Photodithazine (PDZ) as a photosensitive agent in PDT for gliosarcoma.
- To assess the impact of PDZ-mediated PDT on gliosarcoma cell viability and morphology.
Main Methods:
- Gliosarcoma 9L/lacZ cells were treated with Photodithazine (PDZ) and exposed to 660-nm LED light.
- Cell viability was assessed using MTT assays and trypan blue exclusion.
- Cellular localization of PDZ was observed via fluorescence microscopy.
- Morphological changes were examined using optical microscopy.
Main Results:
- PDZ-mediated PDT resulted in 100% cell death across various concentrations.
- Significant morphological differences were observed between treated and untreated gliosarcoma cells.
- Photodithazine localized to both nuclear and cytoplasmic regions, with unclear precise localization within the cell.
Conclusions:
- Photodithazine (PDZ) demonstrates significant potential as a photosensitive agent for photodynamic therapy in gliosarcoma treatment.
- PDZ-PDT effectively induces cell death and morphological changes in gliosarcoma cells.
- Further research is needed to precisely determine the intracellular localization of PDZ.
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