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Updated: Jan 3, 2026

Microarray-based Identification of Individual HERV Loci Expression: Application to Biomarker Discovery in Prostate Cancer
Published on: November 2, 2013
USP22 Functions as an Oncogenic Driver in Prostate Cancer by Regulating Cell Proliferation and DNA Repair
Jennifer J McCann1, Irina A Vasilevskaya1, Neermala Poudel Neupane1
1Department of Cancer Biology, Sidney Kimmel Medical College, Philadelphia, Pennsylvania.
Abstract:
Emerging evidence indicates the deubiquitinase USP22 regulates transcriptional activation and modification of target substrates to promote pro-oncogenic phenotypes. Here, in vivo characterization of tumor-associated USP22 upregulation and unbiased interrogation of USP22-regulated functions in vitro demonstrated critical roles for USP22 in prostate cancer. Specifically, clinical datasets validated that USP22 expression is elevated in prostate cancer, and a novel murine model demonstrated a hyperproliferative phenotype with prostate-specific USP22 overexpression. Accordingly, upon overexpression or depletion of USP22, enrichment of cell-cycle and DNA repair pathways was observed in the USP22-sensitive transcriptome and ubiquitylome using prostate cancer models of clinical relevance. Depletion of USP22 sensitized cells to genotoxic insult, and the role of USP22 in response to genotoxic insult was further confirmed using mouse adult fibroblasts from the novel murine model of USP22 expression. As it was hypothesized that USP22 deubiquitylates target substrates to promote protumorigenic phenotypes, analysis of the USP22-sensitive ubiquitylome identified the nucleotide excision repair protein, XPC, as a critical mediator of the USP22-mediated response to genotoxic insult. Thus, XPC undergoes deubiquitylation as a result of USP22 function and promotes USP22-mediated survival to DNA damage. Combined, these findings reveal unexpected functions of USP22 as a driver of protumorigenic phenotypes and have significant implications for the role of USP22 in therapeutic outcomes. SIGNIFICANCE: The studies herein present a novel mouse model of tumor-associated USP22 overexpression and implicate USP22 in modulation of cellular survival and DNA repair, in part through regulation of XPC.
Insights
The deubiquitinase USP22 drives prostate cancer progression by promoting cell survival and DNA repair. USP22 deubiquitylates XPC, enhancing resistance to genotoxic damage and supporting tumor growth.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- The deubiquitinase USP22 is implicated in cancer, regulating gene expression and promoting tumor growth.
- Understanding USP22's specific roles in prostate cancer is crucial for developing targeted therapies.
Purpose of the Study:
- To investigate the role of USP22 in prostate cancer progression and its impact on cellular response to DNA damage.
- To identify USP22-regulated pathways and substrates involved in prostate cancer pathogenesis.
Main Methods:
- Characterization of USP22 expression in clinical prostate cancer datasets and a novel murine model.
- Transcriptome and ubiquitylome analysis in prostate cancer cells with altered USP22 levels.
- Functional assays assessing USP22's role in response to genotoxic stress.
Main Results:
- USP22 is upregulated in prostate cancer, correlating with a hyperproliferative phenotype in a novel mouse model.
- USP22 modulates cell-cycle and DNA repair pathways, influencing cellular transcriptome and ubiquitylome.
- USP22 depletion sensitizes prostate cancer cells to genotoxic agents by affecting the DNA repair protein XPC.
Conclusions:
- USP22 is a critical driver of prostate cancer, promoting tumor cell survival and DNA repair.
- USP22 deubiquitylates XPC, a key mediator of the DNA damage response, enhancing cancer cell resistance.
- Targeting USP22 may offer a therapeutic strategy for improving treatment outcomes in prostate cancer.
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