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Updated: Oct 5, 2025

Author Spotlight: Tracing the Ferroptotic Signatures and Cell Death Dynamics in Medulloblastoma for Advanced Therapeutics
Published on: March 15, 2024
Inactivation of RIP3 kinase sensitizes to 15LOX/PEBP1-mediated ferroptotic death
Andrew M Lamade1, Limin Wu2, Haider H Dar3
1Safar Center for Resuscitation Research, Department of Critical Care Medicine, University of Pittsburgh Medical Center, 4401 Penn Ave, Pittsburgh, PA, 15224, USA; Center for Free Radical and Antioxidant Health, Department of Environmental and Occupational Health, University of Pittsburgh School of Public Health, 130 Desoto St, Pittsburgh, PA, 15261, USA.
Abstract:
Ferroptosis and necroptosis are two pro-inflammatory cell death programs contributing to major pathologies and their inhibition has gained attention to treat a wide range of disease states. Necroptosis relies on activation of RIP1 and RIP3 kinases. Ferroptosis is triggered by oxidation of polyunsaturated phosphatidylethanolamines (PUFA-PE) by complexes of 15-Lipoxygenase (15LOX) with phosphatidylethanolamine-binding protein 1 (PEBP1). The latter, also known as RAF kinase inhibitory protein, displays promiscuity towards multiple proteins. In this study we show that RIP3 K51A kinase inactive mice have increased ferroptotic burden and worse outcome after irradiation and brain trauma rescued by anti-ferroptotic compounds Liproxstatin-1 and Ferrostatin 16-86. Given structural homology between RAF and RIP3, we hypothesized that PEBP1 acts as a necroptosis-to-ferroptosis switch interacting with either RIP3 or 15LOX. Using genetic, biochemical, redox lipidomics and computational approaches, we uncovered that PEBP1 complexes with RIP3 and inhibits necroptosis. Elevated expression combined with higher affinity enables 15LOX to pilfer PEBP1 from RIP3, thereby promoting PUFA-PE oxidation and ferroptosis which sensitizes Rip3K51A/K51A kinase-deficient mice to total body irradiation and brain trauma. This newly unearthed PEBP1/15LOX-driven mechanism, along with previously established switch between necroptosis and apoptosis, can serve multiple and diverse cell death regulatory functions across various human disease states.
Insights
Phosphatidylethanolamine-binding protein 1 (PEBP1) acts as a switch between necroptosis and ferroptosis. PEBP1 binding to RIP3 inhibits necroptosis, while 15-Lipoxygenase (15LOX) interaction promotes ferroptosis.
Area of Science:
- Cellular biology
- Molecular mechanisms of cell death
- Biochemistry
Background:
- Ferroptosis and necroptosis are pro-inflammatory programmed cell death pathways implicated in various diseases.
- Necroptosis activation depends on RIP1 and RIP3 kinases.
- Ferroptosis is induced by the oxidation of polyunsaturated phosphatidylethanolamines (PUFA-PE) mediated by 15-Lipoxygenase (15LOX) and phosphatidylethanolamine-binding protein 1 (PEBP1).
Purpose of the Study:
- To investigate the role of PEBP1 in regulating the balance between necroptosis and ferroptosis.
- To elucidate the mechanism by which PEBP1 influences cell death pathways.
- To explore the therapeutic potential of targeting this switch in disease states.
Main Methods:
- Genetic manipulation of RIP3 kinase activity (RIP3 K51A mice).
- Biochemical assays to study protein interactions.
- Redox lipidomics to analyze lipid oxidation.
- Computational modeling to understand structural interactions.
Main Results:
- Kinase-inactive RIP3 (RIP3 K51A) mice exhibited increased ferroptosis and worsened outcomes after irradiation and brain trauma.
- PEBP1 forms a complex with RIP3, inhibiting necroptosis.
- 15LOX can displace PEBP1 from RIP3, promoting ferroptosis and sensitizing mice to injury.
Conclusions:
- A novel mechanism involving PEBP1 as a switch between necroptosis and ferroptosis was discovered.
- This PEBP1/15LOX-driven pathway contributes to cell death regulation in disease.
- Targeting this switch offers potential therapeutic strategies for various human pathologies.
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