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Updated: Nov 15, 2025

Engineering Artificial Factors to Specifically Manipulate Alternative Splicing in Human Cells
Published on: April 26, 2017
Splicing factors control triple-negative breast cancer cell mitosis through SUN2 interaction and sororin intron
Esmee Koedoot1, Eline van Steijn1, Marjolein Vermeer1
1Division of Drug Discovery and Safety, LACDR, Leiden University, Einsteinweg 55, 2333 CC, Leiden, The Netherlands.
Background:
Triple negative breast cancer (TNBC) is an aggressive subtype of breast cancer with limited therapeutic opportunities. Recently, splicing factors have gained attention as potential targets for cancer treatment. Here we systematically evaluated the role of RNA splicing factors in TNBC cell proliferation.
Methods:
In this study, we performed an RNAi screen targeting 244 individual splicing factors to systematically evaluate their role in TNBC cell proliferation. For top candidates, mechanistic insight was gained using amongst others western blot, PCR, FACS, molecular imaging and cloning. Pulldown followed by mass spectrometry were used to determine protein-protein interactions and patient-derived RNA sequencing data was used relate splicing factor expression levels to proliferation markers.
Results:
We identified nine splicing factors, including SNRPD2, SNRPD3 and NHP2L1, of which depletion inhibited proliferation in two TNBC cell lines by deregulation of sister chromatid cohesion (SCC) via increased sororin intron 1 retention and down-regulation of SMC1, MAU2 and ESPL1. Protein-protein interaction analysis of SNRPD2, SNRPD3 and NHP2L1 identified that seven out of the nine identified splicing factors belong to the same spliceosome complex including novel component SUN2 that was also critical for efficient sororin splicing. Finally, sororin transcript levels are highly correlated to various proliferation markers in BC patients.
Conclusion:
We systematically determined splicing factors that control proliferation of breast cancer cells through a mechanism that involves effective sororin splicing and thereby appropriate sister chromatid cohesion. Moreover, we identified SUN2 as an important new spliceosome complex interacting protein that is critical in this process. We anticipate that deregulating sororin levels through targeting of the relevant splicing factors might be a potential strategy to treat TNBC.
Insights
Targeting RNA splicing factors, like SNRPD2, SNRPD3, and NHP2L1, inhibits triple-negative breast cancer (TNBC) cell proliferation by affecting sororin splicing and sister chromatid cohesion. This identifies novel therapeutic targets for TNBC treatment.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Triple-negative breast cancer (TNBC) presents limited therapeutic options.
- RNA splicing factors are emerging as potential cancer treatment targets.
- This study investigates the role of RNA splicing factors in TNBC cell proliferation.
Purpose of the Study:
- To systematically evaluate the role of RNA splicing factors in TNBC cell proliferation.
- To identify specific splicing factors that regulate TNBC cell growth.
- To elucidate the underlying molecular mechanisms.
Main Methods:
- Conducted an RNAi screen of 244 splicing factors in TNBC cell lines.
- Utilized western blot, PCR, FACS, and molecular imaging for mechanistic studies.
- Performed pulldown assays with mass spectrometry and analyzed patient RNA sequencing data.
Main Results:
- Identified nine key splicing factors, including SNRPD2, SNRPD3, and NHP2L1, that inhibit TNBC proliferation upon depletion.
- Demonstrated that these factors regulate sister chromatid cohesion via sororin intron 1 retention and affect SMC1, MAU2, and ESPL1.
- Discovered SUN2 as a novel spliceosome component critical for sororin splicing, with sororin levels correlating with proliferation markers in breast cancer patients.
Conclusions:
- Splicing factors control breast cancer cell proliferation through sororin splicing and sister chromatid cohesion.
- SUN2 is identified as a novel spliceosome-interacting protein crucial for this process.
- Targeting splicing factors to modulate sororin levels offers a potential therapeutic strategy for TNBC.
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