Identification of a Novel Hypoxia-induced Inflammatory Cell Death Pathway
Abstract:
Hypoxic cancer cells resist many anti-neoplastic therapies and can seed recurrence. We found previously that PTP1B deficiency promotes HER2+ breast cancer cell death in hypoxia by activating RNF213, an ∼600kDa protein containing AAA-ATPase domains and two ubiquitin ligase domains (RING and RZ) that also is implicated in Moyamoya disease (MMD), lipotoxicity, and innate immunity. Here we report that PTP1B and ABL1/2 reciprocally control RNF213 phosphorylation on tyrosine-1275. This phosphorylation promotes RNF213 oligomerization and RZ domain activation. The RZ domain ubiquitylates CYLD/SPATA2, and together with the LUBAC complex, induces their degradation. Decreased CYLD/SPATA2 causes NF-κB activation, which together with hypoxia-induced ER-stress triggers GDSMD-dependent pyroptosis. Mutagenesis experiments show that the RING domain negatively regulates the RZ domain. CYLD -deleted HER2+ cell-derived xenografts phenocopy the effects of PTP1B deficiency, and reconstituting RNF213 knockout lines with RNF213 mutants shows that the RZ domain mediates PTP1B-dependent tumor cell death. Our results identify a novel, potentially targetable PTP1B/RNF213/CYCLD/SPATA pathway critical for controlling inflammatory cell death in hypoxic tumors that could be exploited to target hypoxic tumor cells, potentially turning "cold" tumors "hot". Our findings also reveal new insights into RNF213 regulation, and have potentially important implications for the pathogenesis of MMD, atherosclerosis, and inflammatory and auto-immune disorders.
Insights
Protein tyrosine phosphatase 1B (PTP1B) deficiency activates RNF213, promoting cell death in hypoxic HER2+ breast cancer. This pathway involves RNF213 phosphorylation, CYLD/SPATA2 degradation, and pyroptosis, offering a target for "cold" tumors.
Area of Science:
- Oncology
- Molecular Biology
- Immunology
Background:
- Hypoxic tumors resist therapy and promote recurrence.
- RNF213, implicated in Moyamoya disease and immunity, is activated by PTP1B deficiency in hypoxic HER2+ breast cancer.
- PTP1B deficiency promotes cancer cell death via RNF213 activation.
Approach:
- Investigated the reciprocal control of RNF213 phosphorylation by PTP1B and ABL1/2.
- Analyzed RNF213 oligomerization and RZ domain activation upon tyrosine-1275 phosphorylation.
- Examined the ubiquitylation and degradation of CYLD/SPATA2 by RNF213 RZ domain and LUBAC complex.
- Assessed the role of CYLD/SPATA2 degradation in NF-κB activation and pyroptosis.
- Utilized mutagenesis and xenograft models to confirm RNF213's role in PTP1B-dependent tumor cell death.
Key Points:
- PTP1B and ABL1/2 reciprocally regulate RNF213 phosphorylation at Y1275.
- Phosphorylated RNF213 oligomerizes, activating its RZ domain to ubiquitylate and degrade CYLD/SPATA2.
- CYLD/SPATA2 degradation triggers NF-κB activation and hypoxia-induced ER-stress-dependent pyroptosis.
- RNF213's RING domain negatively regulates its RZ domain activity.
- CYLD deletion in xenografts mimics PTP1B deficiency effects; RZ domain is crucial for PTP1B-dependent cell death.
Conclusions:
- Identified a novel PTP1B/RNF213/CYLD/SPATA pathway controlling inflammatory cell death in hypoxic tumors.
- This pathway offers a targetable strategy to eliminate hypoxic tumor cells and potentially
- heat
- cold
- tumors.
- Revealed new insights into RNF213 regulation and its implications for Moyamoya disease, atherosclerosis, and inflammatory/autoimmune disorders.
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