PI(4,5)P<sub>2</sub>-dependent regulation of endothelial tip cell specification contributes to angiogenesis.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 37000875.
- Also identified by DOI 10.1126/sciadv.add6911 and PMC identifier 10065449.
- Licence recorded as CC BY-NC.
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Abstract
Dynamic positioning of endothelial tip and stalk cells, via the interplay between VEGFR2 and NOTCH signaling, is essential for angiogenesis. VEGFR2 activates PI3K, which phosphorylates PI(4,5)P<sub>2</sub> to PI(3,4,5)P<sub>3</sub>, activating AKT; however, PI3K/AKT does not direct tip cell specification. We report that PI(4,5)P<sub>2</sub> hydrolysis by the phosphoinositide-5-phosphatase, INPP5K, contributes to angiogenesis. INPP5K ablation disrupted tip cell specification and impaired embryonic angiogenesis associated with enhanced DLL4/NOTCH signaling. INPP5K degraded a pool of PI(4,5)P<sub>2</sub> generated by PIP5K1C phosphorylation of PI(4)P in endothelial cells. INPP5K ablation increased PI(4,5)P<sub>2</sub>, thereby releasing β-catenin from the plasma membrane, and concurrently increased PI(3,4,5)P<sub>3</sub>-dependent AKT activation, conditions that licensed <i>DLL4</i>/<i>NOTCH</i> transcription. Suppression of PI(4,5)P<sub>2</sub> in <i>INPP5K</i>-siRNA cells by <i>PIP5K1C</i>-siRNA, restored β-catenin membrane localization and normalized AKT signaling. Pharmacological NOTCH or AKT inhibition in vivo or genetic β-catenin attenuation rescued angiogenesis defects in INPP5K-null mice. Therefore, PI(4,5)P<sub>2</sub> is critical for β-catenin/DLL4/NOTCH signaling, which governs tip cell specification during angiogenesis.
Medical subject headings
- Adaptor Proteins, Signal Transducing
- beta Catenin