Deubiquitinase USP18 Loss Mislocalizes and Destabilizes KRAS in Lung Cancer
Lisa Maria Mustachio1, Yun Lu1, Laura J Tafe2
1Department of Pharmacology and Toxicology, Dartmouth-Hitchcock Medical Center, Lebanon, New Hampshire.
Abstract:
KRAS is frequently mutated in lung cancers and is associated with aggressive biology and chemotherapy resistance. Therefore, innovative approaches are needed to treat these lung cancers. Prior work implicated the IFN-stimulated gene 15 (ISG15) deubiquitinase (DUB) USP18 as having antineoplastic activity by regulating lung cancer growth and oncoprotein stability. This study demonstrates that USP18 affects the stability of the KRAS oncoprotein. Interestingly, loss of USP18 reduced KRAS expression, and engineered gain of USP18 expression increased KRAS protein levels in lung cancer cells. Using the protein synthesis inhibitor cycloheximide, USP18 knockdown significantly reduced the half-life of KRAS, but gain of USP18 expression significantly increased its stability. Intriguingly, loss of USP18 altered KRAS subcellular localization by mislocalizing KRAS from the plasma membrane. To explore the biologic consequences, immunohistochemical (IHC) expression profiles of USP18 were compared in lung cancers of Kras versus cyclin E engineered mouse models. USP18 expression was higher in Kras-driven murine lung cancers, indicating a link between KRAS and USP18 expression in vivo To solidify this association, loss of Usp18 in Kras /Usp18-/- mice was found to significantly reduce lung cancers as compared with parental Kras/+ mice. Finally, translational relevance was confirmed in a human lung cancer panel by showing that USP18 IHC expression was significantly higher in KRAS-mutant versus wild-type lung adenocarcinomas.Implications: Taken together, this study highlights a new way to combat the oncogenic consequences of activated KRAS in lung cancer by inhibiting the DUB USP18. Mol Cancer Res; 15(7); 905-14. ©2017 AACR.
Insights
This study reveals that USP18 deubiquitinase regulates KRAS oncoprotein stability in lung cancer. Inhibiting USP18 may offer a new strategy to combat KRAS-driven lung cancers.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- KRAS mutations are common in lung cancer, driving aggressive disease and treatment resistance.
- USP18, an ISG15-specific deubiquitinase, has shown potential antineoplastic activity.
- The precise role of USP18 in KRAS-driven lung cancer remains to be fully elucidated.
Purpose of the Study:
- To investigate the functional relationship between USP18 and the KRAS oncoprotein in lung cancer.
- To determine if USP18 impacts KRAS stability, localization, and oncogenic activity.
- To assess the therapeutic potential of targeting USP18 in KRAS-mutant lung cancers.
Main Methods:
- Utilized lung cancer cell lines to assess KRAS protein levels and stability following USP18 modulation.
- Employed cycloheximide to measure KRAS half-life in response to USP18 knockdown or overexpression.
- Investigated KRAS subcellular localization using microscopy.
- Compared USP18 expression in Kras-driven mouse lung cancer models and human lung adenocarcinoma cohorts via immunohistochemistry.
Main Results:
- USP18 loss reduced KRAS expression and stability, while USP18 gain increased KRAS protein levels.
- USP18 knockdown destabilized KRAS, shortening its half-life, whereas USP18 overexpression stabilized KRAS.
- Loss of USP18 caused KRAS mislocalization from the plasma membrane.
- USP18 was upregulated in Kras-driven murine lung cancers and KRAS-mutant human lung adenocarcinomas.
- Loss of Usp18 significantly reduced tumor burden in a Kras-driven mouse model.
Conclusions:
- USP18 directly influences KRAS oncoprotein stability and subcellular localization.
- USP18 plays a pro-tumorigenic role in KRAS-driven lung cancer.
- Inhibiting USP18 represents a promising therapeutic strategy for KRAS-mutant lung cancers.
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