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Published on: March 10, 2020
VEGF-induced neoangiogenesis is mediated by NAADP and two-pore channel-2-dependent Ca2+ signaling
Annarita Favia1, Marianna Desideri2, Guido Gambara1
1Department of Anatomy, Histology, Forensic Medicine and Orthopaedics, Unit of Histology and Medical Embryology, Sapienza University of Rome, 00161 Rome, Italy;
Abstract:
Vascular endothelial growth factor (VEGF) and its receptors VEGFR1/VEGFR2 play major roles in controlling angiogenesis, including vascularization of solid tumors. Here we describe a specific Ca(2+) signaling pathway linked to the VEGFR2 receptor subtype, controlling the critical angiogenic responses of endothelial cells (ECs) to VEGF. Key steps of this pathway are the involvement of the potent Ca(2+) mobilizing messenger, nicotinic acid adenine-dinucleotide phosphate (NAADP), and the specific engagement of the two-pore channel TPC2 subtype on acidic intracellular Ca(2+) stores, resulting in Ca(2+) release and angiogenic responses. Targeting this intracellular pathway pharmacologically using the NAADP antagonist Ned-19 or genetically using Tpcn2(-/-) mice was found to inhibit angiogenic responses to VEGF in vitro and in vivo. In human umbilical vein endothelial cells (HUVECs) Ned-19 abolished VEGF-induced Ca(2+) release, impairing phosphorylation of ERK1/2, Akt, eNOS, JNK, cell proliferation, cell migration, and capillary-like tube formation. Interestingly, Tpcn2 shRNA treatment abolished VEGF-induced Ca(2+) release and capillary-like tube formation. Importantly, in vivo VEGF-induced vessel formation in matrigel plugs in mice was abolished by Ned-19 and, most notably, failed to occur in Tpcn2(-/-) mice, but was unaffected in Tpcn1(-/-) animals. These results demonstrate that a VEGFR2/NAADP/TPC2/Ca(2+) signaling pathway is critical for VEGF-induced angiogenesis in vitro and in vivo. Given that VEGF can elicit both pro- and antiangiogenic responses depending upon the balance of signal transduction pathways activated, targeting specific VEGFR2 downstream signaling pathways could modify this balance, potentially leading to more finely tailored therapeutic strategies.
Insights
A novel signaling pathway involving vascular endothelial growth factor receptor 2 (VEGFR2), nicotinic acid adenine-dinucleotide phosphate (NAADP), and TPC2 channels is crucial for angiogenesis. Targeting this pathway inhibits tumor vascularization and related cellular responses.
Area of Science:
- Molecular Biology
- Cell Biology
- Oncology
Background:
- Vascular endothelial growth factor (VEGF) and its receptors (VEGFR1/VEGFR2) are key regulators of angiogenesis, essential for solid tumor vascularization.
- Understanding the specific signaling pathways downstream of VEGF receptors is critical for developing targeted anti-cancer therapies.
Purpose of the Study:
- To elucidate a specific calcium (Ca2+) signaling pathway linked to VEGFR2 that controls endothelial cell (EC) angiogenic responses to VEGF.
- To investigate the role of nicotinic acid adenine-dinucleotide phosphate (NAADP) and the two-pore channel TPC2 in VEGF-induced angiogenesis.
Main Methods:
- Pharmacological inhibition using the NAADP antagonist Ned-19.
- Genetic targeting using TPC2 knockout (Tpcn2-/-) mice and shRNA.
- In vitro studies in human umbilical vein endothelial cells (HUVECs) and in vivo studies using matrigel plugs in mice.
Main Results:
- Targeting the VEGFR2/NAADP/TPC2/Ca2+ pathway with Ned-19 or Tpcn2 deficiency inhibited VEGF-induced angiogenesis in vitro and in vivo.
- Ned-19 treatment abolished VEGF-induced Ca2+ release in HUVECs, impairing downstream signaling (ERK1/2, Akt, eNOS, JNK) and cellular functions (proliferation, migration, tube formation).
- VEGF-induced vessel formation in vivo was abolished in Tpcn2-/- mice, highlighting the pathway's critical role.
Conclusions:
- A novel VEGFR2/NAADP/TPC2/Ca2+ signaling axis is essential for VEGF-driven angiogenesis.
- Pharmacological or genetic targeting of this pathway offers a potential strategy to modulate angiogenesis for therapeutic benefit.
- Fine-tuning VEGFR2 downstream signaling could lead to more precise therapeutic interventions in cancer.
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