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mTORC1-USP30-LEF1 Cascade Regulates Cancer Stemness and Malignant Progression Through Mitonuclear Crosstalk
Xiaolin Li1,2, Haowei Zhang2, Jia Li2
1School of Food and Drug Shenzhen Polytechnic University Shenzhen China.
USP30, a mitochondrial enzyme, translocates to the nucleus to suppress triple-negative breast cancer (TNBC) stemness and metastasis by inhibiting WNT signaling. This nuclear function offers new therapeutic avenues for breast cancer.
Area of Science:
- Cell Biology
- Molecular Oncology
- Biochemistry
Background:
- USP30 is a deubiquitinase primarily known for mitochondrial functions in mitophagy.
- Its role in the nucleus and cancer biology remains unexplored.
Purpose of the Study:
- To investigate the nuclear functions of USP30 in cancer.
- To elucidate the mechanisms by which USP30 affects cancer stemness and chemoresistance in triple-negative breast cancer (TNBC).
Main Methods:
- Immunofluorescence and cell fractionation to determine USP30 localization.
- Western blotting and site-directed mutagenesis to study phosphorylation and nuclear translocation.
- Co-immunoprecipitation and in vitro deubiquitination assays to analyze protein interactions and enzymatic activity.
- Reporter assays to assess WNT signaling.
- In vivo metastasis models in mice.
Main Results:
- USP30 localizes to both mitochondria and the nucleus.
- Nutrient deprivation induces USP30 nuclear translocation by suppressing mTORC1-mediated phosphorylation at serine 104.
- Nuclear USP30 inhibits cancer stemness and chemoresistance in TNBC by deubiquitinating TCF/LEF1, disrupting β-catenin/LEF1 complex formation with co-activators.
- USP30 downregulation in TNBC tissues correlates with reduced nuclear levels and increased metastasis.
- Overexpression of nuclear USP30 reduces lung metastasis in TNBC mouse models.
Conclusions:
- USP30 possesses a novel nuclear function as a tumor suppressor in TNBC.
- USP30 nuclear translocation is a regulated process crucial for inhibiting WNT signaling and cancer stemness.
- Targeting USP30 nuclear localization presents a potential therapeutic strategy against breast cancer metastasis.
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