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Updated: Jun 5, 2025

Method for Measuring the Activity of Deubiquitinating Enzymes in Cell Lines and Tissue Samples
Published on: May 10, 2015
Pseudokinase TRIB3 stabilizes SSRP1 via USP10-mediated deubiquitination to promote multiple myeloma progression
Haiqin Wang1, Long Liang1, Yifang Xie1
1Department of Hematology, the Second Xiangya Hospital; School of Life Sciences; Hunan Province Key Laboratory of Basic and Applied Hematology, Central South University, Changsha, Hunan, 410011, China.
Abstract:
Multiple myeloma (MM), the world's second most common hematologic malignancy, poses considerable clinical challenges due to its aggressive progression and resistance to therapy. Addressing these challenges requires a detailed understanding of the mechanisms driving MM initiation, progression, and therapeutic resistance. This study identifies the pseudokinase tribble homolog 3 (TRIB3) as a high-risk factor that promotes MM malignancy in vitro and in vivo. Mechanistically, TRIB3 directly interacts with structure-specific recognition protein 1 (SSRP1) and ubiquitin-specific peptidase 10 (USP10), facilitating the formation of a TRIB3/USP10/SSRP1 ternary complex. This complex stabilizes SSRP1 via USP10-mediated deubiquitination, thereby driving MM cell proliferation. Furthermore, a stapled peptide, SP-A, was developed, which effectively disrupts the TRIB3/USP10/SSRP1 complex, leading to a decrease in SSRP1 levels by inhibiting its stabilization through USP10. Notably, SP-A exhibits strong synergistic effects when combined with the proteasome inhibitor bortezomib. Given the critical role of the TRIB3/USP10/SSRP1 complex in MM pathophysiology, it represents a promising therapeutic target for MM treatment. In MM cells, TRIB3, USP10 and SSRP1 form a ternary complex and TRIB3 enhances the deubiquitinating effect of USP10 on SSRP1, leading to malignant progression of MM. In the case of drug intervention, SP-A attenuates the binding of SSRP1 and USP10 by inhibiting protein interactions between TRIB3 and SSRP1 and promoted SSRP1 protein degradation, leading to significant inhibition of MM development. Visual abstract created with Biorender.
Insights
Tribble homolog 3 (TRIB3) drives multiple myeloma (MM) malignancy by stabilizing SSRP1. A novel peptide, SP-A, disrupts this complex, inhibiting MM progression and synergizing with bortezomib.
Area of Science:
- Hematologic Malignancies
- Cancer Biology
- Molecular Oncology
Background:
- Multiple myeloma (MM) is a significant hematologic malignancy with challenging therapeutic resistance.
- Understanding MM pathogenesis is crucial for developing effective treatments.
- The pseudokinase TRIB3 is implicated as a potential driver of MM.
Purpose of the Study:
- To identify and characterize novel molecular drivers of multiple myeloma.
- To elucidate the role of TRIB3 in MM progression and therapeutic resistance.
- To develop a targeted therapeutic strategy against the TRIB3-mediated pathway.
Main Methods:
- In vitro and in vivo studies to assess TRIB3's role in MM.
- Co-immunoprecipitation and deubiquitination assays to analyze protein interactions.
- Development and testing of a stapled peptide (SP-A) to disrupt the TRIB3 complex.
- Combination therapy studies with bortezomib.
Main Results:
- TRIB3 was identified as a high-risk factor promoting MM malignancy.
- TRIB3 forms a ternary complex with USP10 and SSRP1, stabilizing SSRP1 via deubiquitination.
- The stapled peptide SP-A disrupted the TRIB3/USP10/SSRP1 complex, decreasing SSRP1 levels and inhibiting MM cell proliferation.
- SP-A demonstrated synergistic effects with bortezomib in MM treatment.
Conclusions:
- The TRIB3/USP10/SSRP1 complex is a key driver of MM pathophysiology and progression.
- Targeting this complex with agents like SP-A offers a promising therapeutic strategy for MM.
- SP-A represents a potential novel therapeutic agent for multiple myeloma, particularly in combination therapy.
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