Glioblastoma Cells Induce Neuron Loss In Vivo and In Vitro
Komal N Rawal1, Charlotte Degorre1, Philip J Tofilon1
1Radiation Oncology Branch, National Cancer Institute, 10 Center Drive-MSC 1002, Building 10, B3B406, Bethesda, MD 20892, USA.
Abstract:
Background: The vast majority of GBMs recur within 2 years following standard treatment, including radiotherapy. Seizures and epilepsy are common in GBM patients, suggesting tumor-cell-induced neuron toxicity. Additionally, the tumor cells and neurons interact during tumor development; however, the effects of tumor cells on the neurons remain unclear. Methods: Orthotopic xenografts initiated from GSCs expressing GFP implanted into the right striatum of nude mice were irradiated (10 Gy) 35 days after implantation, followed by immunohistochemistry (IHC) to investigate the tumor cell-neuron interactions. Moreover, we established a direct coculture of human GSCs and neurons differentiated from human iPSC-derived neural progenitor cells (NPCs) to investigate the impact of the tumor cells on the neurons. Neuronal cell counts were monitored to assess neurotoxicity. Culture CM were analyzed through cytokine profiling. Results: In untreated mice, tumors invaded across the right hemisphere (RH), with increased cell contact with the mouse neurons. In irradiated mice, the tumor regrowth was less invasive and had fewer neurons. In vitro, the GSCs induced neuronal death in the direct coculture. Similarly, the CM from the direct cocultures caused significant neuronal death. The cytokine analysis revealed that the cocultures uniquely secreted IL-8 into the CM. Furthermore, treatment with recombinant (r) human IL-8 caused significant neuron death, while IL-8 blocking antibodies prevented this neurotoxicity in the coculture. Conclusions: This study demonstrates that GBM tumors regrown after radiation lack neurons, and direct interaction between GSCs and the neurons is necessary for GSC-mediated neurotoxicity, likely involving IL-8 in neuronal death.
Insights
Glioblastoma (GBM) cells kill neurons, especially after radiation therapy. This neurotoxicity involves Interleukin-8 (IL-8) and direct tumor cell-neuron interactions, impacting brain tumor recurrence.
Area of Science:
- Neuro-oncology
- Cancer biology
- Cellular neuroscience
Background:
- Glioblastoma (GBM) frequently recurs post-treatment, with seizures suggesting neuron toxicity.
- Tumor cell-neuron interactions are critical in GBM development, but their impact on neurons is not fully understood.
Purpose of the Study:
- To investigate the impact of Glioblastoma Stem Cells (GSCs) on neurons, particularly after radiotherapy.
- To elucidate the mechanisms underlying GSC-mediated neurotoxicity.
Main Methods:
- Orthotopic xenografts of GSCs in mice, followed by irradiation and immunohistochemistry.
- Direct co-culture of human GSCs and human induced pluripotent stem cell-derived neurons.
- Cytokine profiling of co-culture conditioned media (CM) and assessment of neuronal cell counts.
Main Results:
- Irradiated GBM xenografts showed reduced invasiveness and fewer associated neurons.
- Glioblastoma Stem Cells induced significant neuronal death in vitro, both directly and via conditioned media.
- Interleukin-8 (IL-8) was identified as a key mediator of GSC-induced neurotoxicity, with IL-8 blocking antibodies preventing neuronal death.
Conclusions:
- GBM regrowth after radiation is associated with neuronal loss.
- Direct GSC-neuron interaction is essential for GSC-mediated neurotoxicity.
- Interleukin-8 plays a critical role in Glioblastoma Stem Cell-induced neuronal death.
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