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Updated: May 6, 2026

A Simple Method to Identify Kinases That Regulate Embryonic Stem Cell Pluripotency by High-throughput Inhibitor Screening
Published on: May 12, 2017
Comparative receptor tyrosine kinase profiling identifies a novel role for AXL in human stem cell pluripotency
Mi-Young Son1, Binna Seol, Yong-Mahn Han
1Stem Cell Research Center, KRIBB, 125 Gwahangno, Yuseong-gu, Daejeon 305-806, Republic of Korea.
Abstract:
The extensive molecular characterization of human pluripotent stem cells (hPSCs), human embryonic stem cells (hESCs) and human-induced pluripotent stem cells (hiPSCs) is required before they can be applied in the future for personalized medicine and drug discovery. Despite the efforts that have been made with kinome analyses, we still lack in-depth insights into the molecular signatures of receptor tyrosine kinases (RTKs) that are related to pluripotency. Here, we present the first detailed and distinct repertoire of RTK characteristic for hPSC pluripotency by determining both the expression and phosphorylation profiles of RTKs in hESCs and hiPSCs using reverse transcriptase-polymerase chain reaction with degenerate primers that target conserved tyrosine kinase domains and phospho-RTK array, respectively. Among the RTKs tested, the up-regulation of EPHA1, ERBB2, FGFR4 and VEGFR2 and the down-regulation of AXL, EPHA4, PDGFRB and TYRO3 in terms of both their expression and phosphorylation levels were predominantly related to the maintenance of hPSC pluripotency. Notably, the specific inhibition of AXL was significantly advantageous in maintaining undifferentiated hESCs and hiPSCs and for the overall efficiency and kinetics of hiPSC generation. Additionally, a global phosphoproteomic analysis showed that ∼30% of the proteins (293 of 970 phosphoproteins) showed differential phosphorylation upon AXL inhibition in undifferentiated hPSCs, revealing the potential contribution of AXL-mediated phosphorylation dynamics to pluripotency-related signaling networks. Our findings provide a novel molecular signature of AXL in pluripotency control that will complement existing pluripotency-kinome networks.
Insights
Researchers identified key receptor tyrosine kinases (RTKs) crucial for human pluripotent stem cell (hPSC) pluripotency. Inhibiting AXL, a specific RTK, significantly enhanced hPSC maintenance and reprogramming efficiency, revealing its role in pluripotency control.
Area of Science:
- Stem Cell Biology
- Molecular Biology
- Signaling Pathways
Background:
- Extensive molecular characterization of human pluripotent stem cells (hPSCs) is vital for personalized medicine and drug discovery.
- Current understanding of receptor tyrosine kinase (RTK) roles in pluripotency is limited.
- A detailed repertoire of RTKs associated with hPSC pluripotency is needed.
Purpose of the Study:
- To establish the first detailed repertoire of RTKs characteristic of hPSC pluripotency.
- To investigate the expression and phosphorylation profiles of RTKs in hESCs and hiPSCs.
- To identify specific RTKs that regulate pluripotency maintenance and reprogramming.
Main Methods:
- Utilized reverse transcriptase-polymerase chain reaction (RT-PCR) with degenerate primers for RTK expression profiling.
- Employed phospho-RTK arrays to determine RTK phosphorylation profiles.
- Performed global phosphoproteomic analysis following AXL inhibition.
Main Results:
- Identified distinct RTK expression and phosphorylation signatures associated with hPSC pluripotency.
- Observed up-regulation of EPHA1, ERBB2, FGFR4, and VEGFR2, and down-regulation of AXL, EPHA4, PDGFRB, and TYRO3.
- Demonstrated that AXL inhibition significantly improved hPSC maintenance and hiPSC generation efficiency.
- Revealed that AXL inhibition impacts phosphorylation dynamics in pluripotency-related signaling networks.
Conclusions:
- Established a novel molecular signature for RTKs in hPSC pluripotency control.
- Highlighted AXL as a key regulator of pluripotency maintenance and reprogramming.
- Provided insights into AXL-mediated phosphorylation networks influencing pluripotency.
- Findings complement existing pluripotency-kinome networks and offer therapeutic targets.
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