Von Willebrand factor deficiency impairs angiogenesis via angiopoietin-2: relevance for gut angiodysplasia
Abstract
Abstract Management of recurrent gastrointestinal (GI) bleeding is a clinical unmet need for patients with von Willebrand disease (VWD) and is linked to the presence of gut vascular malformations (angiodysplasia). We previously demonstrated that von Willebrand factor (VWF) regulates angiogenesis and vascular integrity. VWF controls the storage of the angiogenesis regulator angiopoietin-2 (Angpt-2) in endothelial cells (EC), suggesting a candidate for the genesis of angiodysplasia; however, no direct evidence of the role of Angpt-2 in VWF-dependent angiogenesis is available. Using VWF-deficient human umbilical vein EC (HUVEC) and endothelial colony-forming cells (ECFCs) from patients with severe VWD, we found that loss of VWF resulted in increased Angpt-2 expression through the positive feedback loop Angpt-2–Tie-2–Akt–FOXO1–Angpt-2. In the gut of VWF-deficient mice, Angpt-2 expression was increased, whereas Angpt-1 expression was decreased, suggesting that VWF regulates the Angpt/Tie2 balance in the gut. Moreover, the intestinal vasculature in the jejunum of VWF-deficient mice appeared abnormal, with hypersprouting and lumen formation defects. The findings reveal VWF-deficient mice as a model to study gut angiodysplasia. We investigated sprouting angiogenesis in vitro using a fibrin bead assay and found increased sprouting in VWF-deficient EC. We developed a 3-dimensional microfluidic model of angiogenesis and found that ECFCs from patients with severe VWD exhibit defective remodeling and abnormal lumen formation, reminiscent of the defects in the gut of VWF-deficient mice. Importantly, inhibition of Angpt-2 reduced sprouting in VWF-deficient HUVEC and normalized vascular remodeling in VWD-ECFCs, suggesting that Angpt-2 inhibitors may be effective in patients with VWD with GI bleeding and angiodysplasia.
Article Details
Authors (20)
Adela Constantinescu-Bercu
1National Heart and Lung Institute, Imperial College London, London, United Kingdom
Koval E. Smith
1National Heart and Lung Institute, Imperial College London, London, United Kingdom
Shuo Yi Wong
1National Heart and Lung Institute, Imperial College London, London, United Kingdom
Mattia Ballerini
2Department of Electronics, Information and Bioengineering, Politecnico di Milano, Milan, Italy
Alessia Nastro
1National Heart and Lung Institute, Imperial College London, London, United Kingdom
Benjamin G. Wiggins
1National Heart and Lung Institute, Imperial College London, London, United Kingdom
Daniela Pirri
1National Heart and Lung Institute, Imperial College London, London, United Kingdom
Yucheng Li
Juun Evers
1National Heart and Lung Institute, Imperial College London, London, United Kingdom
Olga Tsiamita
3The Royal London Hospital, Barts Health NHS Trust, London, United Kingdom
Matthew Dibble
1National Heart and Lung Institute, Imperial College London, London, United Kingdom
Charis Pericleous
1National Heart and Lung Institute, Imperial College London, London, United Kingdom
Koralia Paschalaki
1National Heart and Lung Institute, Imperial College London, London, United Kingdom
Graeme M. Birdsey
National Heart and Lung Institute, Imperial College London
Jeremiah Bernier-Latmani
Tatiana V. Petrova
Michael A. Laffan
5Centre for Haematology, Imperial College London, United Kingdom
Suthesh Sivapalaratnam
3The Royal London Hospital, Barts Health NHS Trust, London, United Kingdom
Marco Rasponi
2Department of Electronics, Information and Bioengineering, Politecnico di Milano, Milan, Italy
Anna M. Randi
National Heart and Lung Institute, Imperial College London