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Published on: May 14, 2016
USP9X stabilizes XIAP to regulate mitotic cell death and chemoresistance in aggressive B-cell lymphoma
Katharina Engel1, Martina Rudelius2, Jolanta Slawska1
1Department of Medicine III, Klinikum Rechts der Isar, Technische Universität München, München, Germany.
Abstract:
The mitotic spindle assembly checkpoint (SAC) maintains genome stability and marks an important target for antineoplastic therapies. However, it has remained unclear how cells execute cell fate decisions under conditions of SAC-induced mitotic arrest. Here, we identify USP9X as the mitotic deubiquitinase of the X-linked inhibitor of apoptosis protein (XIAP) and demonstrate that deubiquitylation and stabilization of XIAP by USP9X lead to increased resistance toward mitotic spindle poisons. We find that primary human aggressive B-cell lymphoma samples exhibit high USP9X expression that correlate with XIAP overexpression. We show that high USP9X/XIAP expression is associated with shorter event-free survival in patients treated with spindle poison-containing chemotherapy. Accordingly, aggressive B-cell lymphoma lines with USP9X and associated XIAP overexpression exhibit increased chemoresistance, reversed by specific inhibition of either USP9X or XIAP. Moreover, knockdown of USP9X or XIAP significantly delays lymphoma development and increases sensitivity to spindle poisons in a murine Eμ-Myc lymphoma model. Together, we specify the USP9X-XIAP axis as a regulator of the mitotic cell fate decision and propose that USP9X and XIAP are potential prognostic biomarkers and therapeutic targets in aggressive B-cell lymphoma.
Insights
The mitotic spindle assembly checkpoint (SAC) regulates cell fate. USP9X stabilizes XIAP, increasing resistance to chemotherapy in aggressive B-cell lymphoma, suggesting new therapeutic targets.
Area of Science:
- Oncology
- Cell Biology
- Biochemistry
Background:
- The mitotic spindle assembly checkpoint (SAC) is crucial for genome stability and a target for cancer therapies.
- Understanding cell fate decisions during SAC-induced mitotic arrest is critical.
Purpose of the Study:
- To identify the deubiquitinase of XIAP and its role in cell fate under SAC arrest.
- To investigate the USP9X-XIAP axis as a therapeutic target in aggressive B-cell lymphoma.
Main Methods:
- Identified USP9X as the mitotic deubiquitinase of XIAP.
- Analyzed USP9X and XIAP expression in human lymphoma samples and cell lines.
- Utilized knockdown and inhibition strategies in cell lines and a murine lymphoma model.
Main Results:
- USP9X deubiquitylation and stabilization of XIAP confer resistance to mitotic spindle poisons.
- High USP9X/XIAP expression in aggressive B-cell lymphoma correlates with poor patient survival and chemoresistance.
- Inhibition of USP9X or XIAP reverses chemoresistance and delays lymphoma development in vivo.
Conclusions:
- The USP9X-XIAP axis regulates mitotic cell fate decisions.
- USP9X and XIAP are potential prognostic biomarkers and therapeutic targets for aggressive B-cell lymphoma.
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