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5-ALA-PDT induces RIP3-dependent necrosis in glioblastoma
Isabelle Coupienne1, Grégory Fettweis, Noemí Rubio
1Virology and Immunology Unit, GIGA-Research, University of Liège, Belgium.
Abstract:
Glioblastoma constitute the most frequent and deadliest brain tumors of astrocytic origin. They are resistant to all current therapies and are associated with a high rate of recurrence. Glioblastoma were previously shown to respond to treatments by 5-aminolevulinic acid (5-ALA)-based photodynamic therapy (PDT) mainly by activating a necrotic type of cell death. The receptor-interacting protein 3 (RIP3) has recently been outlined as a key mediator of this caspase-independent form of programmed cell death. In the present study, we analyzed the necrotic mechanism induced by 5-ALA-PDT in human glioblastoma cells and explored the role of RIP3 in this context. Our results show that PDT-induced necrosis is dependent on RIP3, which forms aggregates and colocalizes with RIP1 following photosensitization. We demonstrate that PDT-mediated singlet oxygen production is the cause of RIP3-dependent necrotic pathway activation. We also prove that PDT induces the formation of a pro-necrotic complex containing RIP3 and RIP1 but lacking caspase-8 and FADD, two proteins usually part of the necrosome when TNF-α is used as a stimulus. Thus, we hypothesize that PDT might lead to the formation of a different necrosome whose components, besides RIP1 and RIP3, are still unknown. In most cases, glioblastoma are characterized by a constitutive activation of NF-κB. This factor is a key regulator of various processes, such as inflammation, immune response, cell growth or apoptosis. Its inhibition was shown to further sensitize glioblastoma cells to PDT-induced necrosis, however, no difference in RIP3 upshift or aggregation could be observed when NF-κB was inhibited.
Insights
5-aminolevulinic acid photodynamic therapy (PDT) induces glioblastoma cell death via RIP3-dependent necrosis. This pathway is triggered by singlet oxygen and involves a unique RIP3-RIP1 complex, distinct from TNF-α-induced necroptosis.
Area of Science:
- Oncology
- Molecular Biology
- Cell Death Research
Background:
- Glioblastoma are aggressive brain tumors resistant to conventional therapies.
- 5-aminolevulinic acid photodynamic therapy (5-ALA-PDT) shows promise by inducing necrotic cell death in glioblastoma.
- Receptor-interacting protein 3 (RIP3) is a key mediator of programmed necrosis.
Purpose of the Study:
- To elucidate the necrotic mechanism of 5-ALA-PDT in glioblastoma.
- To investigate the specific role of RIP3 in 5-ALA-PDT-induced cell death.
- To characterize the protein complex involved in this necrotic pathway.
Main Methods:
- Analysis of necrotic mechanisms in human glioblastoma cells treated with 5-ALA-PDT.
- Assessment of RIP3 aggregation and colocalization with RIP1.
- Investigation of singlet oxygen's role in RIP3-dependent necrosis.
- Characterization of the pro-necrotic complex composition.
Main Results:
- 5-ALA-PDT-induced necrosis is RIP3-dependent, with RIP3 forming aggregates and colocalizing with RIP1.
- Singlet oxygen production mediates the activation of the RIP3-dependent necrotic pathway.
- A pro-necrotic complex of RIP3 and RIP1, lacking caspase-8 and FADD, is formed.
- Inhibition of NF-κB sensitizes glioblastoma to 5-ALA-PDT but does not alter RIP3 aggregation.
Conclusions:
- 5-ALA-PDT triggers a unique RIP3-dependent necrotic pathway in glioblastoma.
- The PDT-induced necrosome differs from the one formed by TNF-α stimulation.
- Targeting RIP3 or related pathways may offer novel therapeutic strategies for glioblastoma.