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Updated: Jan 17, 2026

A Method for Screening and Validation of Resistant Mutations Against Kinase Inhibitors
Published on: December 7, 2014
Targeting STK17B kinase activates ferroptosis and suppresses drug resistance in multiple myeloma
Zhibo Yan1,2, Zhannan Han2, Yihui Wang2
1Department of Pathology, Duke University School of Medicine, Durham, NC.
Abstract:
The progression of multiple myeloma (MM), an incurable malignancy of plasma cells, is often associated with the suppression of ferroptosis, a type of cell death driven by iron-dependent lipid peroxidation. The mechanisms underlying this suppression remain largely unknown. Here, we identified serine/threonine kinase 17b (STK17B) kinase as a critical suppressor of ferroptosis in MM. Elevated levels of STK17B are associated with poor overall survival in patients with MM, and STK17B expression is significantly higher in relapsed vs newly diagnosed MM cases. We found that inhibiting STK17B in MM cells increased the labile iron pool, enhanced lipid peroxidation, and sensitized cells to conventional anti-MM therapies. Notably, an orally available, in-house-generated STK17B inhibitor induced ferroptosis and significantly reduced tumor growth in MM xenograft mouse models. Mechanistically, proximity labeling assay combined with the phospho-proteomic analysis identified 2 major regulators of iron uptake and transport as direct targets of STK17B: iron-responsive element binding protein 2 (IREB2), and heat shock protein family B member 1 (HSPB1). We demonstrated that STK17B phosphorylates critical regulatory sites on IREB2 (S157) and HSPB1 (S15), thereby modulating the balance between IREB2 and HSPB1 downstream effectors, proferroptotic transferrin receptor, and antiferroptotic ferritin heavy chain proteins. Furthermore, we demonstrated that STK17B indirectly maintains activating phosphorylation of STAT3, a ferroptosis suppressor and a major driver of MM pathobiology. Our findings uncovered a clinically relevant and targetable STK17B-pIREB2S157/pHSPB1S15 signaling axis that suppresses ferroptosis and contributes to drug resistance in MM.
Insights
We discovered STK17B kinase suppresses ferroptosis, a cell death pathway, in multiple myeloma (MM). Inhibiting STK17B shows promise for treating MM by re-sensitizing cancer cells and reducing tumor growth.
Area of Science:
- Oncology
- Cell Death Mechanisms
- Molecular Biology
Background:
- Multiple myeloma (MM) is an incurable plasma cell cancer.
- MM progression is linked to suppressed ferroptosis, an iron-dependent cell death.
- Mechanisms of ferroptosis suppression in MM are not well understood.
Purpose of the Study:
- Identify key regulators of ferroptosis suppression in MM.
- Investigate STK17B kinase as a potential therapeutic target.
- Elucidate the molecular mechanisms by which STK17B influences ferroptosis.
Main Methods:
- Assessed STK17B levels in MM patient samples.
- Inhibited STK17B in MM cell lines and mouse models.
- Utilized proximity labeling and phospho-proteomic analysis.
- Investigated STK17B's effects on iron metabolism and STAT3 signaling.
Main Results:
- Elevated STK17B correlates with poor MM patient survival and relapse.
- STK17B inhibition restores ferroptosis, enhances sensitivity to therapy, and reduces tumor growth.
- STK17B directly targets IREB2 and HSPB1, modulating iron homeostasis.
- STK17B indirectly maintains STAT3 phosphorylation, a key MM driver.
Conclusions:
- STK17B is a critical suppressor of ferroptosis in multiple myeloma.
- The STK17B-IREB2/HSPB1 signaling axis is a novel therapeutic target.
- Targeting STK17B offers a potential strategy to overcome drug resistance in MM.
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