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Updated: Oct 9, 2025

Using the E1A Minigene Tool to Study mRNA Splicing Changes
Published on: April 22, 2021
The oncogenic kinase NEK2 regulates an RBFOX2-dependent pro-mesenchymal splicing program in triple-negative breast
Chiara Naro1,2, Monica De Musso3,4, Francesca Delle Monache3,4
1Department of Neuroscience, Section of Human Anatomy, Catholic University of the Sacred Heart, 00168, Rome, Italy. chiara.naro@unicatt.it.
Background:
Triple-negative breast cancer (TNBC) is the most heterogeneous and malignant subtype of breast cancer (BC). TNBC is defined by the absence of expression of estrogen, progesterone and HER2 receptors and lacks efficacious targeted therapies. NEK2 is an oncogenic kinase that is significantly upregulated in TNBC, thereby representing a promising therapeutic target. NEK2 localizes in the nucleus and promotes oncogenic splice variants in different cancer cells. Notably, alternative splicing (AS) dysregulation has recently emerged as a featuring trait of TNBC that contributes to its aggressive phenotype.
Methods:
To investigate whether NEK2 modulates TNBC transcriptome we performed RNA-sequencing analyses in a representative TNBC cell line (MDA-MB-231) and results were validated in multiple TNBC cell lines. Bioinformatics and functional analyses were carried out to elucidate the mechanism of splicing regulation by NEK2. Data from The Cancer Genome Atlas were mined to evaluate the potential of NEK2-sensitive exons as markers to identify the TNBC subtype and to assess their prognostic value.
Results:
Transcriptome analysis revealed a widespread impact of NEK2 on the transcriptome of TNBC cells, with 1830 AS events that are susceptible to its expression. NEK2 regulates the inclusion of cassette exons in splice variants that discriminate TNBC from other BC and that correlate with poor prognosis, suggesting that this kinase contributes to the TNBC-specific splicing program. NEK2 elicits its effects by modulating the expression of the splicing factor RBFOX2, a well-known regulator of epithelial to mesenchymal transition (EMT). Accordingly, NEK2 splicing-regulated genes are enriched in functional terms related to cell adhesion and contractile cytoskeleton and NEK2 depletion in mesenchymal TNBC cells induces phenotypic and molecular traits typical of epithelial cells. Remarkably, depletion of select NEK2-sensitive splice-variants that are prognostic in TNBC patients is sufficient to interfere with TNBC cell morphology and motility, suggesting that NEK2 orchestrates a pro-mesenchymal splicing program that modulates migratory and invasive properties of TNBC cells.
Conclusions:
Our study uncovers an extensive splicing program modulated by NEK2 involving splice variants that confer an invasive phenotype to TNBCs and that might represent, together with NEK2 itself, valuable therapeutic targets for this disease.
Insights
NEK2 kinase drives triple-negative breast cancer (TNBC) invasiveness by altering gene splicing. Targeting NEK2 and its associated splice variants offers potential new therapies for this aggressive cancer subtype.
Area of Science:
- Oncology
- Molecular Biology
- Genomics
Background:
- Triple-negative breast cancer (TNBC) is an aggressive subtype lacking targeted therapies.
- NEK2 kinase is upregulated in TNBC and implicated in alternative splicing (AS) dysregulation.
- AS dysregulation is a key feature contributing to TNBC's aggressive phenotype.
Purpose of the Study:
- To investigate NEK2's role in modulating the TNBC transcriptome.
- To elucidate the mechanism of NEK2-mediated splicing regulation.
- To evaluate NEK2-sensitive exons as potential biomarkers for TNBC.
Main Methods:
- RNA-sequencing in TNBC cell lines (MDA-MB-231) and validation in others.
- Bioinformatics and functional analyses to understand NEK2's splicing mechanism.
- Analysis of The Cancer Genome Atlas (TCGA) data for biomarker potential.
Main Results:
- NEK2 impacts 1830 AS events in TNBC cells, regulating cassette exons.
- NEK2-regulated splice variants distinguish TNBC and correlate with poor prognosis.
- NEK2 modulates RBFOX2, promoting a pro-mesenchymal phenotype and TNBC cell invasion.
Conclusions:
- NEK2 orchestrates a splicing program driving TNBC invasiveness.
- NEK2-modulated splice variants contribute to an invasive phenotype in TNBC.
- NEK2 and its target splice variants represent promising therapeutic targets for TNBC.
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