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Detection of Alternative Splicing During Epithelial-Mesenchymal Transition
Published on: October 9, 2014
CK1ε/SRSF10 axis regulates the alternative splicing of Bcl-x in lung cancer cells
Qi Sun1, Yun Tang1, Lian Wang2
1Guangdong Provincial Key Laboratory of Regional Immunity and Disease, International Cancer Center, Marshall Laboratory of Biomedical Engineering, Department of Pharmacology, Shenzhen University Medical School, Shenzhen University, Shenzhen, Guangdong, China; School of Pharmacy, Shenzhen University Medical School, Shenzhen University, Shenzhen, Guangdong, China.
Abstract:
The dysregulation of Bcl-x alternative splicing is associated with tumor development and chemoresistance. However, the underlying molecular mechanisms of Bcl-x splicing are still not well-defined. Here, we demonstrated that casein kinase 1ε (CK1ε) was involved in the regulation of Bcl-x alternative splicing. Initially, we noted that SR3029, a specific CK1δ/ε inhibitor, effectively reduced the mRNA and protein expression of Bcl-xL and accompanied by an increase in the mRNA and protein levels of Bcl-xS in a dose-dependent manner. Overexpression of CK1ε decreased the ratio of Bcl-xS/Bcl-xL mRNA and protein compared to the control cells, while depletion of CK1ε leads to an increase in the ratio of Bcl-xS/Bcl-xL. The overexpression of CK1ε also abrogated the impact of serine/arginine-rich splicing factor 10 (SRSF10) knockdown on the ratio of Bcl-xS/Bcl-xL. Subsequently, CK1ε was found to interact with SRSF10 and phosphorylate SRSF10 at S23 and S133, which may be required for the binding of SRSF10 to the Bcl-xL mRNA. Furthermore, depletion of SRSF10 markedly promoted apoptosis and inhibited the viability, proliferation, and colony formation in lung cancer cells. CK1δ/ε inhibitor SR3029 could further enhance the effect of silencing SRSF10 on biological behavior. The xenograft model of lung cancer cells confirmed that pharmacological inhibition of CK1ε and the knockdown of SRSF10 synergistically inhibited tumor growth. Taken together, our results revealed a novel mechanism by which the CK1ε/SRSF10 axis regulates the alternative splicing of the Bcl-x precursor mRNA, which may be a potential therapeutic target for lung cancer.
Insights
Casein kinase 1ε (CK1ε) regulates Bcl-x alternative splicing by phosphorylating SRSF10. This CK1ε/SRSF10 pathway is a potential therapeutic target for inhibiting lung cancer growth and chemoresistance.
Area of Science:
- Molecular Biology
- Cancer Research
- RNA Splicing
Background:
- Bcl-x alternative splicing dysregulation is linked to cancer development and chemoresistance.
- The precise molecular mechanisms governing Bcl-x splicing remain incompletely understood.
Purpose of the Study:
- To elucidate the role of casein kinase 1ε (CK1ε) in regulating Bcl-x alternative splicing.
- To investigate the CK1ε/SRSF10 axis as a potential therapeutic strategy for lung cancer.
Main Methods:
- Utilized a specific CK1δ/ε inhibitor (SR3029) to assess effects on Bcl-x mRNA and protein levels.
- Performed overexpression and depletion studies of CK1ε and SRSF10.
- Investigated protein-protein interactions and phosphorylation sites using biochemical assays.
- Evaluated the impact of CK1ε and SRSF10 modulation on lung cancer cell behavior in vitro and in vivo.
Main Results:
- CK1ε inhibition reduced Bcl-xL and increased Bcl-xS expression.
- CK1ε overexpression decreased the Bcl-xS/Bcl-xL ratio, while CK1ε depletion increased it.
- CK1ε directly phosphorylates SRSF10, influencing its binding to Bcl-xL mRNA.
- SRSF10 depletion promoted apoptosis and inhibited lung cancer cell viability, proliferation, and colony formation.
- Combined inhibition of CK1ε and SRSF10 synergistically suppressed tumor growth in a xenograft model.
Conclusions:
- Identified a novel mechanism where the CK1ε/SRSF10 axis regulates Bcl-x alternative splicing.
- This pathway represents a promising therapeutic target for lung cancer treatment.
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