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Published on: June 9, 2023
RSRC2 Expression Inhibits Malignant Progression of Triple-Negative Breast Cancer by Transcriptionally Regulating SCIN
Nan Zhao1,2, Chunsheng Ni1,2, Shuai Fan1,3
1Department of Pathology, Tianjin Medical University, Tianjin 300070, China.
Abstract:
Triple-negative breast cancer (TNBC) has a shorter survival time and higher mortality rate than other molecular subtypes. RSRC2 is a newly discovered tumor suppressor gene. However, the potential functional mechanism of RSRC2 in TNBC remains unknown so far. Multiple bioinformatics databases were used. A Human Transcriptome Array 2.0 analysis, ChIP-seq analysis, ChIP-qPCR, RT-qPCR, Western blot, cell function assays in vitro and a metastatic mouse model in vivo were performed to demonstrate the role of RSRC2 in TNBC. Through the analysis of various databases, RSRC2 expression was the lowest in TNBC tissues compared to other molecular subtypes. The low expression of RSRC2 was associated with a worse prognosis for patients with breast cancer. The transcriptome array, ChIP-seq and bioinformatics analysis identified that GRHL2 and SCIN might have a close relationship with RSRC2. The functional bioinformatics enrichment analysis and functional cell experiments showed that RSRC2 was involved in cell adhesion, cell proliferation, cell migration and invasion. Furthermore, RSRC2 expression suppressed SCIN expression but not GRHL2 expression. SCIN re-expression in the RSRC2 overexpression cells or SCIN knockdown in the RSRC2 knockdown cells reversed the cellular function caused by RSRC2. Mechanistically, RSRC2 transcriptionally inhibited SCIN expression. In summary, our study reveals that RSRC2 acts as a tumor suppressor in TNBC development and progression through negatively regulating SCIN-mediated cell function, thus providing a potential target for TNBC treatment.
Insights
RSRC2 acts as a tumor suppressor in triple-negative breast cancer (TNBC). It inhibits SCIN, reducing cancer cell migration and invasion, offering a new therapeutic target for TNBC.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Triple-negative breast cancer (TNBC) exhibits poorer survival rates and higher mortality compared to other breast cancer subtypes.
- RSRC2, a novel tumor suppressor gene, has an unelucidated functional role in TNBC.
- Understanding RSRC2's mechanism in TNBC is crucial for developing targeted therapies.
Purpose of the Study:
- To investigate the functional mechanism of RSRC2 in triple-negative breast cancer.
- To determine the relationship between RSRC2 expression and patient prognosis.
- To identify potential molecular targets regulated by RSRC2 in TNBC.
Main Methods:
- Bioinformatics analysis of multiple databases.
- Human Transcriptome Array 2.0, ChIP-seq, ChIP-qPCR, and RT-qPCR analyses.
- In vitro cell function assays and in vivo metastatic mouse models.
Main Results:
- RSRC2 expression is significantly lower in TNBC tissues and associated with worse patient prognosis.
- RSRC2 transcriptionally inhibits SCIN expression, impacting cell adhesion, proliferation, migration, and invasion.
- Functional assays confirmed that RSRC2's tumor-suppressive effects are mediated through SCIN regulation.
Conclusions:
- RSRC2 functions as a tumor suppressor in TNBC by negatively regulating SCIN-mediated cellular functions.
- RSRC2's mechanism involves the transcriptional inhibition of SCIN.
- RSRC2 represents a potential therapeutic target for triple-negative breast cancer treatment.
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