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Updated: Jun 12, 2025

Engineering Artificial Factors to Specifically Manipulate Alternative Splicing in Human Cells
Published on: April 26, 2017
SNRPB2 promotes triple-negative breast cancer progression by controlling alternative splicing of MDM4 pre-mRNA
Shiyi Yu1,2, Yue Si1,2, Jianzhong Yu3
1Institute of Translational Medicine, Medical College, Yangzhou University, Yangzhou, China.
Abstract:
Alternative splicing generates cancer-specific transcripts and is now recognized as a hallmark of cancer. However, the critical oncogenic spliceosome-related proteins involved in triple-negative breast cancer (TNBC) remain elusive. Here, we explored the expression pattern of spliceosome-related proteins in TNBC, non-TNBC, and normal breast tissues from The Cancer Genome Atlas breast cancer (TCGA-BRCA) cohort, revealing higher expression of nearly half of spliceosome-related proteins in TNBC than their counterparts. Among these TNBC-specific spliceosome-related proteins, the expression of SNRPB2 was associated with poor prognosis in patients with TNBC. In TNBC cells, the knockdown of SNRPB2 strongly suppressed cell proliferation and invasion and induced cell cycle arrest. Mechanistically, transcriptome data showed that SNRPB2 knockdown inactivated E2F1 signaling, which regulated the cell cycle. We further validated the downregulation of several cell cycle genes in SNRPB2 knockdown cells. Moreover, the analysis showed that SNRPB2 knockdown triggered the alteration of many alternative splicing events, most of which were skipping of exon. In TNBC cells, it was found that SNRPB2 knockdown led to the skipping of exon 6 in MDM4 pre-mRNA, generating MDM4-S transcript and downregulating MDM4 protein expression. More importantly, downregulation of MDM4 decreased retinoblastoma 1 (Rb1) protein expression, which is a target of MDM4 and a regulator of E2F1 signaling. In summary, the current study revealed an SNRPB2/MDM4/Rb axis in promoting the progression of TNBC, providing novel insights and novel targets for combating TNBC.
Insights
This study identifies SNRPB2 as a key spliceosome protein driving triple-negative breast cancer (TNBC) progression. Targeting the SNRPB2/MDM4/Rb axis offers new therapeutic strategies for TNBC.
Area of Science:
- Molecular Biology
- Cancer Research
- Genomics
Background:
- Alternative splicing is a hallmark of cancer, generating unique transcripts.
- Critical spliceosome proteins driving triple-negative breast cancer (TNBC) remain largely unknown.
- Understanding these proteins is crucial for developing targeted TNBC therapies.
Purpose of the Study:
- To investigate the role of spliceosome-related proteins in TNBC.
- To identify specific proteins and pathways involved in TNBC progression.
- To explore SNRPB2 as a potential therapeutic target in TNBC.
Main Methods:
- Analysis of The Cancer Genome Atlas breast cancer (TCGA-BRCA) cohort for spliceosome protein expression.
- Knockdown experiments in TNBC cells to assess SNRPB2 function.
- Transcriptome analysis to identify downstream signaling pathways.
- Validation of gene and protein expression changes.
Main Results:
- Elevated expression of numerous spliceosome proteins, including SNRPB2, was observed in TNBC.
- SNRPB2 expression correlated with poor prognosis in TNBC patients.
- SNRPB2 knockdown inhibited TNBC cell proliferation, invasion, and induced cell cycle arrest.
- SNRPB2 knockdown inactivated E2F1 signaling and altered alternative splicing, notably affecting MDM4 pre-mRNA processing.
- The SNRPB2/MDM4/Rb1 axis was identified as a key driver of TNBC progression.
Conclusions:
- SNRPB2 is an oncogenic spliceosome protein critical for TNBC progression.
- The identified SNRPB2/MDM4/Rb1 axis provides novel mechanistic insights into TNBC.
- SNRPB2 represents a promising therapeutic target for triple-negative breast cancer.
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