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Role of hematopoietic growth factors in angiogenesis.

In early ontogeny, hematopoiesis is closely associated with angiogenesis. This article reviews recent studies of the effect of hematopoietic growth factors on several endothelial cell functions together with recent findings about angiogenesis and antiangiogenic therapies in hematopoietic malignancies such as leukemia, lymphoma and myeloma.

Animals↗

Viper venom components affecting angiogenesis.

Angiogenesis is a complex process consisting of the proliferation, migration and differentiation of endothelial cells, and it is essential for the progression of malignant solid tumors. In this report, we examine the effects of disintegrins (e.g. rhodostomin and accutin) and glycoprotein-lb-binding proteins (e.g. agkistin) on each step in angiogenesis using in vitro and in vivo models. Rhodostomin (but not agkistin) inhibited the viability of human umbilical vein endothelial cells (HUVECs) and capillary tube formation of HUVECs. Rhodostomin also inhibited HUVEC migration and invasion evoked by basic fibroblast growth factor (bFGF). In in vivo studies, rhodostomin inhibited bFGF-, but not vascular-endothelial-growth-factor (VEGF)- associated angiogenesis in chick chorioallantoic membrane model, blocked both bFGF and B16F10 melanoma cell-induced neovascularization, and suppressed the growth of subcutaneously inoculated B16F10 solid tumor, leading to a prolonged survival of the C57BL/6 mice treated with rhodostomin. The antiangiogenic effects of rhodostomin on bFGF-treated HUVECs may be mainly related to the blockade of the interaction of endothelial alpha(v)beta(3) and extracellular matrix.

Angiogenesis Inhibitors↗

Effects of nicotine on angiogenesis and restenosis in a rabbit model.

BACKGROUND AND AIMS: Nicotine is a major component of cigarette smoke and has been found to play an important role in angiogenesis. However, whether nicotine plays a role in restenosis has not been determined. Therefore, the aim of the present study was to determine the effects of nicotine on angiogenesis and restenosis in a rabbit model. METHODS: Forty male New Zealand White rabbits were randomly divided into control and low-, middle-, and high-dose (0.005, 0.05 or 5 microg/kg, respectively) nicotine-treated groups. Balloon catheter denuding injury iliac artery and ligation of left anterior descending coronary artery were performed in all animals fed with a high-cholesterol diet (HCD) beginning 2 weeks before operation. Nicotine was administered daily by intramuscular injection in the ischemic hindlimb for 3 weeks. Control rabbits received an equal volume of phosphate-buffered saline alone. Collateral vessels of the ischemic hindlimb were observed by angiography of abdominal aorta, and the density of intramyocardial microvessels and proliferative activity of balloon-injured arteries were examined by immunohistochemistry. Serum levels of lipids and the indexes of hepatic or renal functions were also determined before HCD and after nicotine treatment. RESULTS: One rabbit in control, two in low-, one in middle- and two in high-dose groups died during the experiment. The remaining 34 rabbits were included in the study. Two or five weeks after HCD, the levels of serum lipids were significantly increased in all groups, but there was no significant difference of the levels between control and nicotine-treated groups 3 weeks after treatment; the indexes of hepatic or renal functions showed no significant changes 3 weeks after nicotine treatment; there were no significant differences on collateral vessels shown by angiography in all four groups; the density of intramyocardial microvessels in three nicotine-treated groups was significantly higher than that in control group; but the intimal area and proliferative activity in the balloon-injured arteries in three nicotine-treated groups were also higher than those in control group. CONCLUSIONS: The present study shows that intramuscular administration of nicotine for 3 weeks could not increase arteriogenesis in ischemic hindlimb of rabbits, but is capable of significantly promoting intramyocardial angiogenesis. Nicotine can also accelerate intimal proliferation and thickening of balloon catheter denuding injury iliac artery, so it may contribute to the development of restenosis.

Animals↗

Plasminogen activators and matrix metalloproteinases in angiogenesis.

In the initial stages of capillary formation (angiogenesis) microvascular endothelial cells of preexisting blood vessels locally degrade the underlying basal lamina and invade into the stroma of the tissue to be vascularized. A consistent body of experimental evidence has shown that this process requires a wide array of dedradative enzymes. Components of the plasminogen activator (PA)-plasmin system and of the matrix metalloproteinase (MMP) family play important roles. PAs trigger a proteinase cascade that results is the generation of high local concentrations of plasmin and active MMPs. This increase in proteolytic activity has three major consequences: it permits endothelial cell degradation and invasion of the vessel basal lamina, generates extracellular matrix (ECM) degradation products that are chemotactic for endothelial cells, and activates and mobilizes growth factors localized in the ECM. In addition, urokinase-type PA modulates some endothelial cell functions, including proliferation and migration, with a mechanism independent of proteolytic activity. PA and MMP activities are modulated in endothelial cells by complex mechanisms, including transcriptional regulation by a variety of growth factors and cytokines with angiogenic activity, extracellular control of the proteolytic activities by tissue inhibitors, and interaction with binding sites on the cell membrane and ECM.

Animals↗

Endothelial cell biology: an update. 5th International Symposium on the Biology of Endothelial Cells.

The 5th International Symposium on the Biology of Endothelial Cells was held in Dresden, Germany. The meeting included sessions on endothelial cell differentiation, tumor and lymph angiogenesis, endothelial cell junctions and barrier function, bio-mechanical control of endothelial function, oxidative stress and endothelial dysfunction, hypoxia and VEGF-induced signaling, inflammation and angiogenesis. This report summarizes the key findings of the platform presentations of the meeting.

Animals↗

Fibroblast growth factor receptor-1 expression is required for hematopoietic but not endothelial cell development.

OBJECTIVE: The purpose of this study was to clarify the role of fibroblast growth factors (FGFs) and FGF receptors (FGFRs) in hematopoietic/endothelial development. METHODS AND RESULTS: Using several different FGFR-1-specific antibodies and FGFR-1 promoter-driven LacZ activity, we show that FGFR-1 is expressed and active as a tyrosine kinase in a subpopulation of endothelial cells (approximately 20% of the endothelial pool) during development in embryoid bodies. In agreement, in stem cell-derived teratomas, expression of FGFR-1 was detected in some but not all vessels. The FGFR-1 expressing endothelial cells were mitogenically active in the absence and presence of vascular endothelial growth factor (VEGF). Expression of FGFR-1 in endothelial cell precursors was not required for vascular development, and vascularization was enhanced in FGFR-1-deficient embryoid bodies compared with wild-type stem cells. In contrast, hematopoietic development was severely disturbed, with reduced expression of markers for primitive and definitive hematopoiesis. CONCLUSIONS: Our data show that FGFR-1 is expressed in early hematopoietic/endothelial precursor cells, as well as in a subpool of endothelial cells in tumor vessels, and that it is critical for hematopoietic but not for vascular development.

Animals↗

Pericellular proteases in angiogenesis and vasculogenesis.

Pericellular proteases play an important role in angiogenesis and vasculogenesis. They comprise (membrane-type) matrix metalloproteinases [(MT-)MMPs], serine proteases, cysteine cathepsins, and membrane-bound aminopeptidases. Specific inhibitors regulate them. Major roles in initiating angiogenesis have been attributed to MT1-matrix metalloproteinase (MMP), MMP-2, and MMP-9. Whereas MT-MMPs are membrane-bound by nature, MMP-2 and MMP-9 can localize to the membrane by binding to alphavbeta3-integrin and CD44, respectively. Proteases switch on neovascularization by activation, liberation, and modification of angiogenic growth factors and degradation of the endothelial and interstitial matrix. They also modify the properties of angiogenic growth factors and cytokines. Neovascularization requires cell migration, which depends on the assembly of protease-protein complexes at the migrating cell front. MT1-MMP and urokinase (u-PA) form multiprotein complexes in the lamellipodia and focal adhesions of migrating cells, facilitating proteolysis and sufficient support for endothelial cell migration and survival. Excessive proteolysis causes loss of endothelial cell-matrix interaction and impairs angiogenesis. MMP-9 and cathepsin L stimulate the recruitment and action of blood- or bone-marrow-derived accessory cells that enhance angiogenesis. Proteases also generate fragments of extracellular matrix and hemostasis factors that have anti-angiogenic properties. Understanding the complexity of protease activities in angiogenesis contributes to recognizing new targets for stimulation or inhibition of neovascularization in disease.

ADAM Proteins↗

Combination of in vivo angiopoietin-1 gene transfer and autologous bone marrow cell implantation for functional therapeutic angiogenesis.

OBJECTIVE: Autologous bone marrow mononuclear cell (BM-MNC) implantation into ischemic tissues promotes angiogenesis, but a large amount of marrow aspiration is required, which is a major clinical limitation. Angiopoietin-1 (Ang-1) is requisite for vascular maturation during angiogenesis. We examined the impacts of combinatorial Ang-1 gene transfer and low-dose autologous BM-MNC implantation on therapeutic angiogenesis in a rabbit model of hind limb ischemia. METHODS AND RESULTS: Rabbits were divided into 4 groups: phosphate-buffered saline (control), 500 microg Ang-1 plasmid (Ang-1), 1 x 10(6) autologous BM-MNCs (BMC), and Ang-1 plasmid plus BM-MNCs (combination). The Ang-1 group had a greater angiographic score and capillary density compared with the control (P<0.05), but the Ang-1 gene therapy alone did not improve transcutaneous oxygen pressure (TcO2) and skin ulcer score. However, the combination group showed a significant improvement in not only angiographic score and capillary density (P<0.05) but also TcO2 (P<0.05) and skin ulcer score. These efficacies were greater in the combination group compared with the BMC group. CONCLUSIONS: This Ang-1 gene and BM-MNC combination therapy enhances not only quantitative but also qualitative angiogenesis in ischemic tissues. Moreover, the combination therapy will enable a reduction in the amount of BM aspiration required for significant therapeutic angiogenesis.

Angiography↗

The vasohibin family: a negative regulatory system of angiogenesis genetically programmed in endothelial cells.

Biological phenomena are under the precise control by the genome. For the regulation of angiogenesis, proangiogenic genes such as VEGFs and angiopoietins are highly conserved, act specifically on endothelial cells, and play a fundamental role. In this sense, nature should prepare specific antiangiogenic genes as well. However, this counterpart of genomic regulation of angiogenesis remains to be established. We recently isolated a novel endothelium-derived angiogenesis inhibitor and named it vasohibin. Vasohibin is dominantly expressed in endothelial cells, induced by the stimulation with VEGF or FGF-2, and selectively affects on endothelial cells and inhibits angiogenesis. Although the mechanism of how vasohibin inhibits angiogenesis remains to be elucidated, our discovery of vasohibin as an endothelium-derived VEGF-inducible angiogenesis inhibitor should shed light on the genomic basis of the negative regulation of angiogenesis.

Alternative Splicing↗

Vascular protection: A novel nonangiogenic cardiovascular role for vascular endothelial growth factor.

There is widespread interest in the use of the angiogenic cytokine, vascular endothelial growth factor (VEGF), for the treatment of cardiovascular disease. The main paradigm for VEGF cardiovascular therapy is the stimulation of "therapeutic angiogenesis" in ischemic myocardial and peripheral vascular limb disease. In this review, approaches to VEGF therapy based on the therapeutic angiogenesis model are critically assessed, and the alternative mechanism of vascular protection is advanced. Vascular protection is defined as the VEGF-induced enhancement of endothelial functions that mediate the inhibition of vascular smooth muscle cell proliferation, enhanced endothelial cell survival, suppression of thrombosis, and anti-inflammatory effects. VEGF-induced synthesis of NO and prostacyclin are both likely to be key mediators of VEGF-dependent vascular protection. Investigation into vascular protection should help us to gain insight into the underlying mechanisms of the cardiovascular actions of VEGF and should prove valuable in the development of novel therapeutic approaches based on local VEGF gene delivery.

Animals↗

Tissue and serum angiogenic activity is associated with low prevalence of ischemic complications in patients with giant-cell arteritis.

BACKGROUND: Vascular inflammatory lesions from patients with giant-cell arteritis show a remarkable amount of neovascularization, but its clinical implications have never been investigated. METHODS AND RESULTS: To assess the clinical relevance of neovascularization in giant-cell arteritis, angiogenesis was measured in temporal artery sections from 31 patients with biopsy-proven giant-cell arteritis by staining endothelial cells with Ulex europaeus lectin. Angiogenesis was highly variable among these patients. Patients without ischemic complications had higher tissue angiogenesis scores than patients with ischemic events (5.69+/-0.6 versus 2.91+/-0.6, P=0.003). Angiogenesis was also more prominent in patients with a strong acute phase response (score: 5.31+/-0.6) compared with those with a weak systemic inflammatory reaction (2.30+/-0.44; P=0.0007). Serum angiogenic activity was studied in an additional series of 38 biopsy-proven patients. Sera from patients without ischemic events tended to be more active in stimulating human umbilical vein endothelial cell growth (optical density x1000, 270+/-15 versus 192+/-14, P=0.065) and differentiation into capillary-like structures (107+/-5 versus 84+/-8 relative units, P=0.0058) than patients with ischemic complications. Sera from patients without ischemic events had more in vivo full angiogenic activity tested in the chick chorioallantoic membrane than sera from patients with ischemic complications. CONCLUSION: Inflammation-induced angiogenic activity may play a compensatory role for ischemia in patients with giant-cell arteritis.

Acute-Phase Reaction↗

Evidence of human thrombomodulin domain as a novel angiogenic factor.

BACKGROUND: Thrombomodulin is an anticoagulant, endothelial-cell-membrane glycoprotein. A recombinant thrombomodulin domain containing 6 epidermal growth factor-like structures exhibits mitogenic activity. This study explored the novel angiogenic effects of the recombinant domain using in vitro and in vivo models. METHODS AND RESULTS: Human recombinant thrombomodulin containing 6 epidermal growth factor-like structures (TMD2) and TMD2 plus a serine and threonine-rich domain (TMD23) were prepared using the Pichia pastoris expression system. Combined with purified TMD2 or TMD23, thrombin effectively activated protein C. TMD23 had higher activity than TMD2 in stimulating DNA synthesis in cultured human umbilical vein endothelial cells. Additionally, TMD23 stimulated chemotactic motility and capillarylike tube formation in human umbilical vein endothelial cells, an effect mediated through phosphorylation of extracellular signal-regulated kinase 1/2 and p38 mitogen-activated protein kinase and the phosphatidylinositol-3 kinase/Akt/endothelial nitric oxide synthase pathway. TMD23 also stimulated endothelial cell expression of matrix metalloproteinases and plasminogen activators, which mediated extracellular proteolysis, leading to endothelial cell invasion and migration during angiogenesis. Furthermore, TMD23-containing implants in rat cornea induced ingrowth of new blood vessels from the limbus. With the murine angiogenesis assay, TMD23 not only induced neovascularization coinjected with Matrigel and heparin but also enhanced angiogenesis in Matrigel containing melanoma A2058 cells in nude mice. CONCLUSIONS: The recombinant thrombomodulin domain TMD23 enhanced the angiogenic response in vitro and in vivo, suggesting that thrombomodulin fragments may play a role in the formation of new vessels. These findings may provide a new therapeutic option for treating ischemic diseases.

Angiogenesis Inducing Agents↗