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Updated: Oct 7, 2025

Author Spotlight: Tracing the Ferroptotic Signatures and Cell Death Dynamics in Medulloblastoma for Advanced Therapeutics
Published on: March 15, 2024
RSL3 Drives Ferroptosis through NF-κB Pathway Activation and GPX4 Depletion in Glioblastoma
Shengbiao Li1, Yuping He1, Kexin Chen1
1School of Basic Medical Sciences, Southwest Medical University, Luzhou 646000, China.
Abstract:
Glioblastoma, the most aggressive form of malignant glioma, is very difficult to treat because of its aggressively invasive nature and high recurrence rates. RAS-selective lethal 3 (RSL3), a well-known inhibitor of glutathione peroxidase 4 (GPX4), could effectively induce oxidative cell death in glioblastoma cells through ferroptosis, and several signaling pathways are involved in this process. However, the role of the nuclear factor kappa-B (NF-κB) pathway in glioblastoma cell ferroptosis has not yet been investigated. Therefore, we aimed to clarify the underlying mechanism of the NF-κB pathway in RSL3-induced ferroptosis in glioblastoma cells. We found that RSL3 led to an increase in lipid ROS concentration and downregulation of ferroptosis-related proteins such as GPX4, ATF4, and SLC7A11 (xCT) in glioblastoma cells. Additionally, the NF-κB pathway was activated by RSL3, and its inhibition by BAY 11-7082 could alleviate ferroptosis. The murine xenograft tumor model indicated that NF-κB pathway inhibition could mitigate the antitumor effects of RSL3 in vivo. Furthermore, we found that GPX4 knockdown could not effectively induce ferroptosis. However, NF-κB pathway activation coupled with GPX4 silencing induced ferroptosis. Additionally, ATF4 and xCT expression might be regulated by the NF-κB pathway. Collectively, our results revealed that the NF-κB pathway plays a novel role in RSL3-induced ferroptosis in glioblastoma cells and provides a new therapeutic strategy for glioblastoma treatment.
Insights
The nuclear factor kappa-B (NF-κB) pathway is activated by RSL3, promoting ferroptosis in glioblastoma. Inhibiting NF-κB reduces RSL3
Area of Science:
- Oncology
- Molecular Biology
- Cell Death Research
Background:
- Glioblastoma is an aggressive brain cancer with poor treatment outcomes.
- Ferroptosis, a form of regulated cell death, is induced by RSL3 (RAS-selective lethal 3) via glutathione peroxidase 4 (GPX4) inhibition.
- The role of the nuclear factor kappa-B (NF-κB) pathway in glioblastoma ferroptosis remains unexplored.
Purpose of the Study:
- To elucidate the mechanism of the NF-κB pathway in RSL3-induced ferroptosis in glioblastoma cells.
- To investigate the interplay between NF-κB signaling and ferroptosis regulators.
Main Methods:
- RSL3 treatment of glioblastoma cells to induce ferroptosis.
- Assessment of lipid ROS, ferroptosis-related proteins (GPX4, ATF4, SLC7A11/xCT), and NF-κB pathway activation.
- Pharmacological inhibition of the NF-κB pathway using BAY 11-7082.
- Evaluation in a murine xenograft glioblastoma model.
- GPX4 knockdown experiments.
Main Results:
- RSL3 increased lipid ROS and downregulated GPX4, ATF4, and SLC7A11.
- RSL3 activated the NF-κB pathway; its inhibition attenuated ferroptosis.
- NF-κB inhibition reduced RSL3's antitumor effects *in vivo*.
- GPX4 knockdown alone did not induce significant ferroptosis, but combined with NF-κB activation, it did.
- NF-κB pathway appears to regulate ATF4 and xCT expression.
Conclusions:
- The NF-κB pathway plays a significant role in RSL3-induced ferroptosis in glioblastoma.
- Targeting the NF-κB pathway presents a potential therapeutic strategy for glioblastoma treatment.
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