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Impact of silencing eEF2K expression on the malignant properties of chordoma
Esra Aydemir1, Emre Can Tüysüz2,3,4, Ömer Faruk Bayrak3
1Department of Biomedical Engineering, Faculty of Engineering and Natural Sciences, Biruni University, 10. Yil Cad, Protokol Yolu, No: 45 Topkapı, 34010, Istanbul, Turkey. eaydemir@biruni.edu.tr.
Background:
Eukaryotic elongation factor 2 kinase (eukaryotic elongation factor 2 kinase, eEF2K) is a calcium calmodulin dependent protein kinase that keeps the highest energy consuming cellular process of protein synthesis under check through negative regulation. eEF2K pauses global protein synthesis rates at the translational elongation step by phosphorylating its only kown substrate elongation factor 2 (eEF2), a unique translocase activity in ekaryotic cells enabling the polypeptide chain elongation. Therefore, eEF2K is thought to preserve cellular energy pools particularly upon acute development of cellular stress conditions such as nutrient deprivation, hypoxia, or infections. Recently, high expression of this enzyme has been associated with poor prognosis in an array of solid tumor types. Therefore, in a growing number of studies tremendous effort is being directed to the development of treatment methods aiming to suppress eEF2K as a novel therapeutic approach in the fight against cancer.
Methods:
In our study, we aimed to investigate the changes in the tumorigenicity of chordoma cells in presence of gene silencing for eEF2K. Taking a transient gene silencing approach using siRNA particles, eEF2K gene expression was suppressed in chordoma cells.
Results:
Silencing eEF2K expression was associated with a slight increase in cellular proliferation and a decrease in death rates. Furthermore, no alteration in the sensitivity of chordoma cells to chemotherapy was detected in response to the decrease in eEF2K expression which intriguingly promoted suppression of cell migratory and invasion related properties.
Conclusion:
Our findings indicate that the loss of eEF2K expression in chordoma cell lines results in the reduction of metastatic capacity.
Insights
Suppressing eukaryotic elongation factor 2 kinase (eEF2K) in chordoma cells reduced metastasis. This study investigated eEF2K gene silencing and its impact on chordoma tumorigenicity, revealing decreased cell migration and invasion.
Area of Science:
- Molecular Biology
- Cancer Biology
- Biochemistry
Background:
- Eukaryotic elongation factor 2 kinase (eEF2K) regulates protein synthesis and energy conservation.
- High eEF2K expression is linked to poor prognosis in various solid tumors.
- Targeting eEF2K is a potential cancer therapeutic strategy.
Purpose of the Study:
- To investigate the effect of eEF2K gene silencing on chordoma cell tumorigenicity.
- To assess changes in proliferation, death rates, chemotherapy sensitivity, and metastatic properties.
Main Methods:
- Transient gene silencing of eEF2K using siRNA particles in chordoma cells.
- Analysis of cellular proliferation, death rates, chemotherapy sensitivity, and cell migration/invasion properties.
Main Results:
- eEF2K silencing slightly increased cellular proliferation and decreased cell death.
- No change in chordoma cell sensitivity to chemotherapy was observed.
- Suppression of eEF2K promoted the reduction of cell migratory and invasion properties.
Conclusions:
- Loss of eEF2K expression in chordoma cell lines reduces metastatic capacity.
- eEF2K inhibition may be a strategy to combat chordoma metastasis.
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