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Author Spotlight: Tracing the Ferroptotic Signatures and Cell Death Dynamics in Medulloblastoma for Advanced Therapeutics
Published on: March 15, 2024
Poly-l-arginine promotes ferroptosis in asthmatic airway epithelial cells by modulating PBX1/GABARAPL1 axis
Min Pan1, Ling Zhang1, Shuang Chang1
1Department of Geriatric Respiratory and Critical Care Medicine, the First Affiliated Hospital of Anhui Medical University, Hefei, China; Department of Biochemistry & Molecular Biology, School of Basic Medicine, Anhui Medical University, Hefei, China; Anhui Geriatric Institute, Hefei, China.
Abstract:
Eosinophils play a featured role among inflammatory cells participating in the onset and development of asthma. Activated eosinophils release several cytotoxic granular proteins, such as major basic protein (MBP), posing a significant threat to airway epithelium. Ferroptosis, a novel form of cell death, is gaining recognition for its involvement in asthma pathogenesis, though the specific mechanisms remain largely unknown. Herein, we revealed that poly-l-arginine (PLA), an MBP mimic, induced ferroptosis in airway epithelium by downregulating γ-aminobutyric acid receptor-associated protein-like 1 (GABARAPL1). Reduced GABARAPL1 expression was further confirmed in ovalbumin (OVA)-induced asthma mice and PLA-treated human airway organoids (hAOs). Mechanistically, PLA activated mechanistic target of rapamycin complex 1 (mTORC1) signaling, inhibiting pre-B-cell leukemia transcription factor 1 (PBX1), which in turn leads to transcriptional downregulation of GABARAPL1. Furthermore, MBP extracted from eosinophils, similar to PLA, induced ferroptosis in airway epithelial cells, as well as modulating mTORC1/PBX1/GABARAPL1 pathway. Finally, Ferrostatin-1 treatment or GABARAPL1 overexpression alleviated ferroptosis and airway inflammation in asthmatic mice. Overall, our findings highlight the cell communication between eosinophils and airway epithelial cells. MBP modulates the mTORC1/PBX1/GABARAPL1 axis, thereby serving as a significant contributor to ferroptosis in airway epithelium and airway inflammation. This suggests that suppressing ferroptosis in airway epithelium or targeting eosinophils and MBP could lead to novel therapeutic strategies for asthma management.
Insights
Eosinophil major basic protein (MBP) triggers ferroptosis in airway epithelial cells by downregulating GABARAPL1 via the mTORC1/PBX1 pathway. Targeting this pathway offers new asthma treatment strategies.
Area of Science:
- Cell Biology
- Immunology
- Respiratory Medicine
Background:
- Asthma involves eosinophils releasing cytotoxic proteins like major basic protein (MBP) that damage airway epithelium.
- Ferroptosis, a form of regulated cell death, is implicated in asthma, but its mechanisms are unclear.
Purpose of the Study:
- To elucidate the role of eosinophil-derived MBP in inducing ferroptosis in airway epithelium.
- To investigate the molecular mechanisms linking MBP, ferroptosis, and asthma pathogenesis.
Main Methods:
- Utilized poly-l-arginine (PLA) as an MBP mimic to induce ferroptosis in airway epithelial cells.
- Confirmed findings in ovalbumin-induced asthma mouse models and human airway organoids (hAOs).
- Investigated the mechanistic target of rapamycin complex 1 (mTORC1)/pre-B-cell leukemia transcription factor 1 (PBX1)/γ-aminobutyric acid receptor-associated protein-like 1 (GABARAPL1) signaling pathway.
Main Results:
- PLA induced ferroptosis by downregulating GABARAPL1, a finding consistent in asthma models and hAOs.
- MBP activated mTORC1 signaling, inhibited PBX1, leading to decreased GABARAPL1 expression and ferroptosis.
- Ferrostatin-1 treatment or GABARAPL1 overexpression reduced ferroptosis and airway inflammation in asthmatic mice.
Conclusions:
- Eosinophil MBP contributes to airway epithelial ferroptosis and inflammation by modulating the mTORC1/PBX1/GABARAPL1 axis.
- Interfering with ferroptosis or targeting eosinophils/MBP presents potential therapeutic avenues for asthma management.

