Neutrophil Extracellular Traps, Angiogenesis and Cancer
Abstract
:1. Introduction
2. Neutrophils and Cancer
3. Neutrophils, Angiogenesis and Lymphangiogenesis
4. NET Formation
5. NETs in Cancer
6. NETs Modulate Inflammation
7. NETs and Angiogenesis
8. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
ANGPT | angiopoietin |
ANGPT1 | angiopoietin 1 |
ANGPT2 | angiopoietin 2 |
Arg-1 | arginase 1 |
ATC | anaplastic thyroid cancer |
ATE | arterial thromboembolism |
BEC | blood endothelial cell |
bFGF | basic fibroblast growth factor |
CTL | cytolytic T lymphocyte |
DC | dendritic cell |
EC | endothelial cell |
EGF | epidermal growth factor |
EMT | endothelial-to-mesenchymal transition |
FOXO1 | Forkhead box O |
H3cit | citrullinated histone 3 |
HGF | hepatocyte growth factor |
HIF | hypoxia inducible factor |
HPAEC | human pulmonary artery endothelial cells |
LDN | low-density neutrophil |
LEC | lymphatic endothelial cell |
LPS | lipopolysaccharide |
mAb | monoclonal antibody |
MET | macrophage extracellular trap |
MMP-9 | metalloproteinase 9 |
MPO | Myeloperoxidase |
NDN | normal-density neutrophil |
NE | neutrophil elastase |
NET | neutrophil extracellular trap |
NK cell | natural killer cell |
NLR | neutrophil-to-lymphocyte ratio |
NRP1 | neuropilin 1 |
PAD4 | peptidyl-arginine deiminase 4 |
PAF | platelet-activating factor |
PKC | protein kinase C |
PlGF | placental growth factor |
PMN-MDSC | neutrophils and granulocytic myeloid derived suppressor cell |
sPLA2 | secreted phospholipases A2 |
TAM | tumor associated macrophage |
TME | tumor microenvironment |
TNF-α | tumor necrosis factor-α |
VEGF | vascular endothelial growth factor |
VEGFR | vascular endothelial growth factor receptor |
VTE | venous thromboembolism |
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Mechanisms | References |
---|---|
NETs drive endothelial-to-mesenchymal transition | [71,72] |
NETs promote experimental tumor growth | [71,73,74,75,76,77,78,79,80] |
NETs promote human tumor growth | [73,74,75,77,78,80,81,82] |
NETs promote angiogenesis | [35,41,83,84,85,86,87,88] |
NETs trap circulating cancer cells | [68,74,89] |
NETs awaken dormant cancer cells | [66] |
NETs promote metastasis formation | [74,79,90,91,92] |
NETs shield cancer cells from cytotoxicity | [68] |
NETs promote cancer-associated thrombosis | [93,94,95,96,97,98,99,100] |
Mechanisms | References |
---|---|
NETs induce increased capillary tube length, number of sprouts, and sprouting area of endothelial cells | [85] |
Angiopoietin 1 (ANGPT1) and angiopoietin 2 (ANGPT2), alone or combined, induce NET formation | [86] |
ANGPT-mediated NETs increase human endothelial cell tube length and the number of loops | [86] |
Human neutrophils sustain angiogenesis through the release of VEGF-A, HGF, BV8, and MMP9 | [35,41,83,84,87,88] |
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Poto, R.; Cristinziano, L.; Modestino, L.; de Paulis, A.; Marone, G.; Loffredo, S.; Galdiero, M.R.; Varricchi, G. Neutrophil Extracellular Traps, Angiogenesis and Cancer. Biomedicines 2022, 10, 431. https://doi.org/10.3390/biomedicines10020431
Poto R, Cristinziano L, Modestino L, de Paulis A, Marone G, Loffredo S, Galdiero MR, Varricchi G. Neutrophil Extracellular Traps, Angiogenesis and Cancer. Biomedicines. 2022; 10(2):431. https://doi.org/10.3390/biomedicines10020431
Chicago/Turabian StylePoto, Remo, Leonardo Cristinziano, Luca Modestino, Amato de Paulis, Gianni Marone, Stefania Loffredo, Maria Rosaria Galdiero, and Gilda Varricchi. 2022. "Neutrophil Extracellular Traps, Angiogenesis and Cancer" Biomedicines 10, no. 2: 431. https://doi.org/10.3390/biomedicines10020431
APA StylePoto, R., Cristinziano, L., Modestino, L., de Paulis, A., Marone, G., Loffredo, S., Galdiero, M. R., & Varricchi, G. (2022). Neutrophil Extracellular Traps, Angiogenesis and Cancer. Biomedicines, 10(2), 431. https://doi.org/10.3390/biomedicines10020431