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Engineering Artificial Factors to Specifically Manipulate Alternative Splicing in Human Cells
Published on: April 26, 2017
SF3B6 promotes the oncogenic phenotypes of MDA-MB-231 cells by extensively interacting with and regulating
Chunxiu Yuan1, Yuanyuan Gao2, Ying Huang2
1Department 3 of Medical Oncology, General Hospital of Ningxia Medical University, Yinchuan, 750004, Ningxia, China. cara2004107@163.com.
Abstract:
SF3B6 functions as a splicing factor, and is closely associated with the malignant progression of multiple cancer types, including breast cancer. However, its underlying mechanism is largely unknown in breast tumor cells. In this study, we investigated the molecular mechanism and downstream targets of SF3B6 by transfecting the siRNA of SF3B6 (siSF3B6) into MDA-MB-231 cells and combining with high-throughput transcriptome sequencing (RNA-seq) and improved RNA immunoprecipitation sequencing (iRIP-seq) technology. We found siSF3B6 significantly repressed cellular proliferation and migration levels, but increased apoptosis levels of MDA-MB-231 cells. Downstream RNA-seq analysis revealed that SF3B6 silencing resulted in widespread changes in differentially expressed genes (DEGs) and regulatory alternative splicing events (RASEs) that were involved in inflammatory response and immune regulatory pathways, such as the NF-κB signaling pathway. The iRIP-seq analysis indicated that SF3B6 can regulate the gene expression and alternative splicing profile by directly interacting with its targeting mRNAs. Further analysis showed that SF3B6 potentially contributes to the malignant properties of TNBC by regulating the expression and splicing of key oncogenes, including PPM1F and FASN, and tumor suppressor genes, including RLF and RECQL4, which were validated by RT-qPCR experiment. In summary, this study highlights the crucial molecular role of SF3B6 in breast cancer cells, providing new insights into its potential as a biomarker or valuable target in breast cancer diagnosis and treatment in future.
Insights
SF3B6, a splicing factor, drives breast cancer progression. Silencing SF3B6 in MDA-MB-231 cells repressed proliferation and migration, offering potential therapeutic targets for triple-negative breast cancer (TNBC).
Area of Science:
- Molecular Biology
- Cancer Research
- Genomics
Background:
- SF3B6 is implicated in cancer progression, but its mechanism in breast cancer remains unclear.
- Understanding SF3B6's role is crucial for developing targeted breast cancer therapies.
Purpose of the Study:
- To elucidate the molecular mechanism and identify downstream targets of SF3B6 in breast cancer cells.
- To investigate SF3B6's contribution to triple-negative breast cancer (TNBC) malignancy.
Main Methods:
- Utilized siRNA targeting SF3B6 (siSF3B6) in MDA-MB-231 cells.
- Employed high-throughput transcriptome sequencing (RNA-seq) and improved RNA immunoprecipitation sequencing (iRIP-seq).
- Validated findings using RT-qPCR experiments.
Main Results:
- SF3B6 silencing reduced cell proliferation and migration while increasing apoptosis.
- SF3B6 regulates differentially expressed genes and alternative splicing in inflammatory and immune pathways (e.g., NF-κB).
- SF3B6 directly interacts with target mRNAs to modulate gene expression and splicing, affecting oncogenes and tumor suppressors.
Conclusions:
- SF3B6 plays a critical role in breast cancer malignancy, particularly in TNBC.
- SF3B6 influences key oncogenes (PPM1F, FASN) and tumor suppressors (RLF, RECQL4).
- SF3B6 presents a potential biomarker and therapeutic target for breast cancer treatment.
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