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TRIM3 inhibits P53 signaling in breast cancer cells
Xinxing Wang1, Yujie Zhang1, Xinhong Pei1
1Department of Breast Surgery, The First Affiliated Hospital of Zhengzhou University, Henan Province 450052, Zhengzhou, People's Republic of China.
Background:
Beast cancer is the most common women cancer worldwide, while two third of them are ER alpha positive breast cancer. Among the ER alpha positive breast cancer, about 80% are P53 wild type, indicating the potential tumor suppression role in ER alpha positive breast cancer. Since P53 is an important safeguard to inhibit cell malignant transformation, reactivating P53 signaling could a plausible approach to treat breast cancer.
Methods:
TRIM3 protein levels were measured by western blot, while the P53 classical target genes were measured by real-time PCR. WST1 assay were used to measure cell proliferation, while cleaved caspase-3 was used to detect cell apoptosis. Protein stability and ubiquitin assay were used to detect the P53 protein ubiquitin and stability. The immuno-precipitation assays were used to detect the protein interactions. Immuno-staining was used to detect the protein localization of P53 and TRIM3, while the ubiquitin-based immuno-precipitation assays were used to detect the specific ubiquitination manner of P53.
Results:
In our study, we identified TRIM3 as an endogenous inhibitor for P53 signaling. TRIM3 depletion inhibited breast cancer cell proliferation and promoted apoptosis. In addition, TRIM3 depletion increased P53 protein level in breast cancer cell. Further investigation showed that TRIM3 could associate with P53 and promote P53 K48-linked ubiquitination and degradation.
Conclusion:
Our study identified a novel post-translational modification mechanism between TRIM3 and P53. TRIM3 depletion or blockage could be a promising strategy to rescue P53 signaling and inhibit breast cancer progression.
Insights
Researchers found TRIM3 inhibits P53 signaling in breast cancer. Depleting TRIM3 reduced cancer cell growth and increased P53 levels, suggesting TRIM3 blockage as a potential breast cancer treatment.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Breast cancer is the most common cancer in women, with ER alpha-positive subtypes prevalent.
- Wild-type P53 plays a tumor-suppressive role in ER alpha-positive breast cancer.
- Reactivating P53 signaling is a potential therapeutic strategy for breast cancer.
Purpose of the Study:
- To investigate the role of TRIM3 in regulating P53 signaling in breast cancer.
- To identify TRIM3 as a potential therapeutic target for breast cancer treatment.
Main Methods:
- Western blot for TRIM3 protein levels.
- Real-time PCR for P53 target genes.
- WST1 assay for cell proliferation and cleaved caspase-3 for apoptosis.
- Ubiquitin and protein stability assays for P53.
- Immunoprecipitation and immunostaining for protein interactions and localization.
Main Results:
- TRIM3 acts as an endogenous inhibitor of P53 signaling.
- TRIM3 depletion reduces breast cancer cell proliferation and enhances apoptosis.
- TRIM3 associates with P53, promoting its K48-linked ubiquitination and degradation, thus increasing P53 protein levels.
Conclusions:
- A novel post-translational modification mechanism between TRIM3 and P53 was identified.
- TRIM3 depletion or inhibition is a promising strategy to restore P53 signaling and impede breast cancer progression.
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