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Published on: May 26, 2017
Identification of pAKT as a pharmacodynamic marker for MER kinase in human melanoma G361 cells
Yaoyu Chen1, Margaret Favata1, Michelle Pusey1
1Incyte Research Institute, 1801 Augustine Cut-off, Wilmington, DE 19803 USA.
Background:
The MER signaling pathway represents an attractive therapeutic target for human cancers. Growth arrest-specific protein 6 (GAS6)-induced MER phosphorylation is often unstable and difficult to detect without pervanadate pretreatment in human cancer cells, posing a challenge for the development of selective MER kinase inhibitors. Here, we identified phosphorylated AKT (pAKT) as a specific pharmacodynamic marker for MER kinase inhibitors in human melanoma G361 cells.
Methods:
The expression of MER, TYRO3, and AXL were profiled among multiple human cancer cells. To determine whether they play a role in the activation of pAKT, MER and TYRO3 were selectively depleted by small, interfering RNA knockdown. In addition, using AKT phosphorylation as a readout, a high-throughput cell-based assay was established in G361 cells for evaluation of the potency of potential inhibitors of MER pathway activation.
Results:
We demonstrated that high levels of MER and TYRO3, but not AXL, were expressed in G361 cells. In these cells, pAKT was induced by GAS6 treatment, which could be reversed by AXL/MER inhibitors. We showed that GAS6-induced pAKT is only dependent on MER kinase, but not TYRO3, in G361 cells. Furthermore, we observed a correlation in potency between inhibition of pAKT in G361 cells and pMER in MER-overexpressing Ba/F3 cells by these inhibitors.
Conclusions:
In summary, we have demonstrated that GAS6-induced pAKT is a possible pharmacodynamic marker for the inhibition of MER kinase, and we have successfully developed a cell-based functional assay for screening small-molecule inhibitors of MER kinase for potential therapeutic utility in treating GAS6/MER-deregulated human cancers.
Insights
Phosphorylated AKT (pAKT) is a reliable marker for MER kinase inhibitors in cancer. This study developed a cell-based assay to screen for inhibitors targeting the GAS6/MER pathway in cancers.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- The MER signaling pathway is a key target in cancer therapy.
- Detecting MER kinase activity is challenging due to unstable phosphorylation.
- This instability hinders the development of selective MER kinase inhibitors.
Purpose of the Study:
- Identify a specific pharmacodynamic marker for MER kinase inhibitors.
- Develop a cell-based assay for screening MER pathway inhibitors.
- Evaluate the therapeutic potential for cancers with deregulated GAS6/MER signaling.
Main Methods:
- Profiled MER, TYRO3, and AXL expression in human cancer cells.
- Utilized small interfering RNA to deplete MER and TYRO3.
- Established a high-throughput cell-based assay using AKT phosphorylation as a readout.
Main Results:
- High MER and TYRO3 expression, but not AXL, was observed in G361 melanoma cells.
- GAS6-induced AKT phosphorylation (pAKT) was dependent on MER kinase.
- pAKT inhibition correlated with MER kinase inhibition, validating pAKT as a marker.
Conclusions:
- GAS6-induced pAKT serves as a pharmacodynamic marker for MER kinase inhibition.
- A functional cell-based assay was developed for screening MER kinase inhibitors.
- This assay aids in developing therapeutics for cancers involving the GAS6/MER pathway.
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