ArticleJournal of experimental & clinical cancer research : CR2022
SRSF10 stabilizes CDC25A by triggering exon 6 skipping to promote hepatocarcinogenesis.
Article in Journal of experimental & clinical cancer research : CR, 2022. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 19 papers, 1 of them a synthesis that pooled it.
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Who cites it
19 citing papers in PubMed, 1 synthesis or guideline pooled it, 27 citations in OpenAlex.
- Decoding the role of aberrant RNA alternative splicing in hepatocellular carcinoma: a comprehensive review.Journal of cancer research and clinical oncology · 2023Pooled it
- HNRNPU mutations redirect cell cycle control to E2F in MYC-driven lymphomas.Blood advances · 2026Article
- Dysregulated competitive splicing between circular and linear RNAs characterizes hepatocellular carcinoma tumorigenesis and recurrence.Biology direct · 2026Article
- SRSF10 promotes cisplatin resistance in bladder cancer via BIN1 Exon 12 retention and ANXA1 activation.Oncogene · 2026Article
- Inhibition of the U12-type splicing factor ZCRB1 mediates retention of the USP21 minor intron to suppress malignant progression in hepatocellular carcinoma.Hepatology international · 2026Article
- Multi-omics analysis identifies BUB1B as a cell cycle-related driver of bladder cancer progression.World journal of surgical oncology · 2026Article
- LncRNA PSMA-AS1 affects glioma cell metastasis through mediating pyroptosis via miR-140-3p/SRSF10 axis.Cytotechnology · 2025Article
- RBM39 promotes hepatocarcinogenesis by regulating RFX1's alternative splicing and subsequent activation of integrin signaling pathway.Oncogene · 2025Article
- Alternative Splicing in Tumorigenesis and Cancer Therapy.Biomolecules · 2025Review
- CDC25A inhibition sensitizes melanoma cells to doxorubicin and NK cell therapy.Cell death & disease · 2025Article
- ARRB2 promotes cervical cancer progression via stabilizing CDC25A mRNA through m6A-IGF2BP1-dependent manner.NPJ precision oncology · 2025Article
- Comprehensive systems biology analysis reveals splicing factor contributions to cutaneous melanoma progression.Scientific reports · 2025Article
- Tumor-promoting effect and tumor immunity of SRSFs.Frontiers in cell and developmental biology · 2025Review
- Exploring serine-arginine rich splicing factors: potential predictive markers for dysregulation in oral cancer.BMC cancer · 2024Article
- Assessing the Impact of NovelCells · 2024Article
- Machine learning for identifying tumor stemness genes and developing prognostic model in gastric cancer.Aging · 2024Article
- Alternative splicing and related RNA binding proteins in human health and disease.Signal transduction and targeted therapy · 2024Review
- SRSF10 regulates proliferation of neural progenitor cells and affects neurogenesis in developing mouse neocortex.iScience · 2023Article
- The splicing factor SNRPB promotes ovarian cancer progression through regulating aberrant exon skipping of POLA1 and BRCA2.Oncogene · 2023Article
Corrections and comments
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Authors and funding
9 authors at 3 institutions in 1 country.
Funding
Abstract
backgroundAlternative splicing (AS) events are extensively involved in the progression of diverse tumors, but how serine/arginine-rich splicing Factor 10 (SRSF10) behaves in hepatocellular carcinoma (HCC) has not been sufficiently studied. We aimed to determine SRSF10 associated AS mechanisms and their effects on HCC progression.
methodsThe expression of SRSF10 in HCC tissues was examined, and the in vitro and in vivo functions of SRSF10 were investigated. The downstream AS targets were screened using RNA sequencing. The interaction between SRSF10 protein and exclusion of cell division cycle 25 A (CDC25A) mRNA was identified using RNA immunoprecipitation and crosslinking immunoprecipitation q-PCR. The effects of SRSF10 on CDC25A posttranslational modification, subcellular distribution, and protein stability were verified through coimmunoprecipitation, immunofluorescence, and western blotting.
resultsSRSF10 was enriched in HCC tissues and facilitated HCC proliferation, cell cycle, and invasion. RNA sequencing showed that SRSF10 promotes exon 6 exclusion of CDC25A pre-mRNA splicing. As a crucial cell cycle mediator, the exon-skipped isoform CDC25A(△E6) was identified to be stabilized and retained in the nucleus due to the deletion of two ubiquitination (Lys150, Lys169) sites in exon 6. The stabilized isoform CDC25A(△E6) derived from AS had stronger cell cycle effects on HCC tumorigenesis, and playing a more significant role than the commonly expressed longer variant CDC25A(L). Interestingly, SRSF10 activated the carcinogenesis role of CDC25A through Ser178 dephosphorylation to cause nuclear retention. Moreover, CDC25A(△E6) was verified to be indispensable for SRSF10 to promote HCC development in vitro and in vivo.
conclusionsWe reveal a regulatory pattern whereby SRSF10 contributes to a large proportion of stabilized CDC25A(△E6) production, which is indispensable for SRSF10 to promote HCC development. Our findings uncover AS mechanisms such as CDC25A that might serve as potential therapeutic targets to treat HCC.
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