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Phosphoproteomic analysis identifies CLK1 as a novel therapeutic target in gastric cancer
Niraj Babu1,2, Sneha M Pinto1,3, Manjusha Biswas4
1Institute of Bioinformatics, International Technology Park, Bangalore, Bangalore, 560066, India.
Background:
Phosphorylation is an important regulatory mechanism of protein activity in cells. Studies in various cancers have reported perturbations in kinases resulting in aberrant phosphorylation of oncoproteins and tumor suppressor proteins.
Methods:
In this study, we carried out quantitative phosphoproteomic analysis of gastric cancer tissues and corresponding xenograft samples. Using these data, we employed bioinformatics analysis to identify aberrant signaling pathways. We further performed molecular inhibition and silencing of the upstream regulatory kinase in gastric cancer cell lines and validated its effect on cellular phenotype. Through an ex vivo technology utilizing patient tumor and blood sample, we sought to understand the therapeutic potential of the kinase by recreating the tumor microenvironment.
Results:
Using mass spectrometry-based high-throughput analysis, we identified 1,344 phosphosites and 848 phosphoproteins, including differential phosphorylation of 177 proteins (fold change cut-off ≥ 1.5). Our data showed that a subset of differentially phosphorylated proteins belonged to splicing machinery. Pathway analysis highlighted Cdc2-like kinase (CLK1) as upstream kinase. Inhibition of CLK1 using TG003 and CLK1 siRNA resulted in a decreased cell viability, proliferation, invasion and migration as well as modulation in the phosphorylation of SRSF2. Ex vivo experiments which utilizes patient's own tumor and blood to recreate the tumor microenvironment validated the use of CLK1 as a potential target for gastric cancer treatment.
Conclusions:
Our data indicates that CLK1 plays a crucial role in the regulation of splicing process in gastric cancer and that CLK1 can act as a novel therapeutic target in gastric cancer.
Insights
Cdc2-like kinase (CLK1) is crucial for gastric cancer progression by regulating protein splicing. Inhibiting CLK1 shows therapeutic potential, decreasing cancer cell viability and invasion.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Aberrant protein phosphorylation is common in cancer, driven by kinase dysregulation.
- Kinase activity impacts oncoproteins and tumor suppressor proteins, affecting cellular processes.
- Understanding these alterations is key to identifying novel cancer targets.
Purpose of the Study:
- To identify aberrant signaling pathways in gastric cancer using phosphoproteomics.
- To investigate the role of specific kinases in gastric cancer progression.
- To evaluate the therapeutic potential of targeting identified kinases in gastric cancer.
Main Methods:
- Quantitative phosphoproteomic analysis of gastric cancer tissues and xenografts.
- Bioinformatics analysis to identify dysregulated signaling pathways and kinases.
- Molecular inhibition and silencing of candidate kinases in gastric cancer cell lines.
- Ex vivo validation using patient-derived tumor microenvironments.
Main Results:
- Identified 1,344 phosphosites and 848 phosphoproteins, with 177 showing differential phosphorylation.
- Discovered that a subset of differentially phosphorylated proteins are involved in the splicing machinery.
- Highlighted Cdc2-like kinase (CLK1) as a key upstream kinase.
- CLK1 inhibition (TG003, siRNA) reduced cell viability, proliferation, invasion, and migration, altering SRSF2 phosphorylation.
- Ex vivo models confirmed CLK1 as a potential therapeutic target.
Conclusions:
- CLK1 plays a critical role in regulating the splicing process in gastric cancer.
- CLK1 represents a novel and promising therapeutic target for gastric cancer treatment.
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