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Published on: June 6, 2025
USP22 regulates oncogenic signaling pathways to drive lethal cancer progression
Randy S Schrecengost1, Jeffry L Dean, Jonathan F Goodwin
1Authors' Affiliations: Departments of Cancer Biology, Urology, Radiation Oncology, Pathology, and Kimmel Cancer Center, Thomas Jefferson University, Philadelphia, Pennsylvania; Sidney Kimmel Comprehensive Cancer Center; Department of Pathology, Johns Hopkins University, Baltimore, Maryland; and Institute of Biomedical Technology, University of Tampere and Tampere University Hospital, Tampere, Finland.
Abstract:
Increasing evidence links deregulation of the ubiquitin-specific proteases 22 (USP22) deubitiquitylase to cancer development and progression in a select group of tumor types, but its specificity and underlying mechanisms of action are not well defined. Here we show that USP22 is a critical promoter of lethal tumor phenotypes that acts by modulating nuclear receptor and oncogenic signaling. In multiple xenograft models of human cancer, modeling of tumor-associated USP22 deregulation demonstrated that USP22 controls androgen receptor accumulation and signaling, and that it enhances expression of critical target genes coregulated by androgen receptor and MYC. USP22 not only reprogrammed androgen receptor function, but was sufficient to induce the transition to therapeutic resistance. Notably, in vivo depletion experiments revealed that USP22 is critical to maintain phenotypes associated with end-stage disease. This was a significant finding given clinical evidence that USP22 is highly deregulated in tumors, which have achieved therapeutic resistance. Taken together, our findings define USP22 as a critical effector of tumor progression, which drives lethal phenotypes, rationalizing this enzyme as an appealing therapeutic target to treat advanced disease.
Insights
The ubiquitin-specific protease 22 (USP22) enzyme promotes lethal cancer by altering nuclear receptor signaling and driving therapeutic resistance. Targeting USP22 may treat advanced cancers.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Deregulation of ubiquitin-specific protease 22 (USP22) is linked to cancer progression.
- The precise mechanisms and specificity of USP22 in cancer are not fully understood.
Purpose of the Study:
- To investigate the role of USP22 in promoting lethal tumor phenotypes.
- To elucidate the mechanisms by which USP22 influences cancer signaling pathways.
Main Methods:
- Utilized multiple xenograft models of human cancer to study USP22 deregulation.
- Performed in vivo depletion experiments to assess USP22's necessity in maintaining tumor phenotypes.
Main Results:
- USP22 was found to be a critical promoter of lethal tumor phenotypes.
- USP22 modulates androgen receptor accumulation and signaling, enhancing target gene expression (e.g., MYC).
- USP22 induces therapeutic resistance and is essential for maintaining end-stage disease phenotypes.
Conclusions:
- USP22 is a critical effector of tumor progression and drives lethal phenotypes.
- USP22's role in reprogramming nuclear receptor signaling and inducing therapeutic resistance makes it a promising therapeutic target for advanced cancers.
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