Endothelial CDS2 deficiency causes VEGFA-mediated vascular regression and tumor inhibition

Wencao Zhao1, Le Cao1, Hanru Ying2

  • 1Key Laboratory of Tissue Microenvironment and Tumor, CAS Center for Excellence in Molecular Cell Science, Shanghai Institute of Nutrition and Health, University of Chinese Academy of Sciences, Chinese Academy of Sciences (CAS), Shanghai, China.

Cell Research
|September 11, 2019
PubMed

Insights

Genetic ablation of CDP-diacylglycerol synthetase-2 (CDS2) reverses vascular endothelial growth factor-a (VEGFA) signaling, shifting it from promoting blood vessel growth to inducing regression. This unexpected finding impacts vascular biology and tumor growth.

Area of Science:

  • Vascular Biology
  • Cell Signaling
  • Metabolic Enzymes

Background:

  • Endothelial cell response is crucial for vascular development and function.
  • Vascular endothelial growth factor-a (VEGFA) is widely known to promote angiogenesis.

Purpose of the Study:

  • To investigate the role of CDP-diacylglycerol synthetase-2 (CDS2) in VEGFA signaling.
  • To determine how the absence of CDS2 affects endothelial cell response to VEGFA.

Main Methods:

  • Genetic ablation of CDS2 in zebrafish and mice.
  • Live imaging analysis of endothelial cell migration and regression.
  • Analysis of phosphoinositide metabolism and downstream signaling pathways (PIP2, PIP3, FOXO1).

Main Results:

  • CDS2 deficiency switches VEGFA signaling from angiogenesis to vessel regression.
  • Endothelial cell reverse migration and regression observed in CDS2-deficient models.
  • Tumor growth was suppressed in CDS2-deficient mice due to VEGFA-induced vessel regression.
  • Mechanism involves reduced PIP2 and PIP3 levels, leading to FOXO1 activation and endothelial regression.

Conclusions:

  • VEGFA's effect on vasculature is context-dependent and can be switched from promoting angiogenesis to inducing regression.
  • CDS2 plays a critical role in regulating VEGFA signaling output.
  • Targeting CDS2 could offer novel strategies for controlling angiogenesis, particularly in tumor settings.

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