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In vitro angiomodulatory activity of sera from type 2 diabetic patients with background retinopathy.

Diabetic retinopathy is the leading cause of adult vision loss and blindness. The most important contributors to the development of diabetic retinopathy are hyperglycemia and hypoxemia that lead to increased vasopermeability, endothelial cell proliferation, and pathological neovascularization. In our previous studies, close relationship between proangiogenic activity of sera from type 2 diabetes mellitus patients (DM2) with background retinopathy, assessed in the in vivo serum-induced mouse cutaneous test (SIA), and VEGF and IL-18 serum concentration were observed. Moreover, it was clearly shown that IGF-1 might play an important role in the negative regulation of neoangiogenesis induced by DM2 patients' sera by diminishing the VEGF stimulatory effect. To confirm the observed phenomenon we evaluated the effect of DM2 patients' sera on the in vitro proliferative activity of human endothelial cells, which is critical for the sprouting and generation of new blood capillaries. Endothelial proliferative activity was significantly higher in the presence of sera from DM2 patients than from healthy controls (P<0.001), as estimated by the MTT test. Moreover, the examined sera from DM2 patients were characterized by increased IL-18 (P<0.05), diminished IGF-1 (P<0.02), and unchanged VEGF levels compared with those in controls. In conclusion, the present study showed a strong stimulatory effect of DM2 patients' sera on the proliferation of endothelial cells, which, along with the findings of our previous studies, proves that the described phenomenon is universal and valid for both animal and human endothelium.

Aged↗

[Angiogenesis and viral infections].

The review summarizes the results obtained from a study of the mechanisms responsible for angiogenesis during embryogenesis and adulthood in various abnormalities and in infections caused by hepatitis C virus and herpes simplex virus.

Animals↗

Down-regulation of PEDF expression by ribozyme transgene in endothelial and lung cancer cells and its impact on angiogenesis in vitro.

Pigmental epithelial-derived factor (PEDF) is an important anti-angiogenesis factor. It has many different functions in ocular cells. The inhibition on angiogenesis by PEDF is associated with endothelial cell apoptosis. Until now, there have been few reports on the PEDF's role in cancer cell progression. This study examined the effect of a ribozyme transgene, designed to inhibit human PEDF expression, and its impact on in vitro lung cancer, endothelial cell growth and the angiogenesis forming process, in vitro. A transgene encoding ribozymes to specially target human PEDF was constructed using pEF6/v5-his vector. The human lung cancer cell line, A549, and endothelial cells, HECV, were transfected with PEDF ribozyme. MTT assay was used to analyse cell growth alternation after the PEDF gene was knocked out. An in vitro endothelial tubule formation assay was employed to analyse the microtubule forming change after the PEDF gene was knocked out in HECV cells. The PEDF message and protein were successfully removed with the PEDF ribozyme as shown by reverse transcription-PCR and Western blotting, respectively. The growth of both A549 and HECV cells were significantly accelerated when the PEDF gene was knocked out. The HECV cell ability to form microtubules increased following PEDF knockout. Furthermore, HECV significantly enhanced the ability to form microtubules when co-cultured with A549 cells whose PEDF expression was lost by way of the ribozyme transgene. Ribozyme transgenes targeting PEDF in lung cancer and endothelial cells can reduce the growth of these cells. Expression of PEDF in both cancer cells and endothelial cells are correlated with the angiogenic process' paracrine and autocrine pattern.

Blood Vessels↗

Imiquimod as an antiangiogenic agent.

Imiquimod (imidazoquinoline 5%) is a topical immune response modifier agent that inhibits angiogenesis, the growth of new blood vessels. In addition to its stimulation of cell-mediated immunity, imiquimod's antiangiogenic activity contributes to its clinical efficacy by interfering with pathological neovascularization that promotes disease progression. The antiangiogenic mechanisms of imiquimod are due to its: 1) induction of cytokines that themselves inhibit angiogenesis (interferons, IL-10, IL-12); 2) local up-regulation of endogenous angiogenesis inhibitors (TIMP, TSP-1); 3) local down-regulation of pro-angiogenic factors (bFGF, MMP-9); and 4) promotion of endothelial cell apoptosis. This report discusses these mechanisms and the rationale for imiquimod's use as an antiangiogenic agent. Key principles of antiangiogenic therapy are presented to describe how imiquimod may be applied in a well-tolerated fashion to treat a broad range of angiogenesis-dependent dermatological conditions, including actinic keratosis (AK), basal cell carcinoma (BCC), squamous cell carcinoma (SCC), lentigo maligna, hemangiomas, Kaposi's sarcoma, pyogenic granuloma, and external genital warts.

Adjuvants, Immunologic↗

Role of the vascular endothelial growth factor isoforms in retinal angiogenesis and DiGeorge syndrome.

The aim of this study was to characterize the specific role of the various vascular endothelial growth factor (VEGF) isoforms in different aspects of blood vessel formation: vessel outgrowth, arterial and venous differentiation, and vascular remodeling and patterning. Although the role of VEGF in the early stages of vascular assembly has been studied extensively, its role in the maturation stage, involving vascular remodeling and patterning, as well as in the establishment of arteries and veins, remains enigmatic. The three major VEGF isoforms are known to differ in their solubility (VEGF120 is freely soluble and VEGF188 is completely matrix-bound, while VEGF164 has intermediate properties) and receptor binding properties (VEGF164 does and VEGF120 does not bind to neuropilin-1 (Nrp-1)), but the specific biological function of these VEGF isoforms is largely unknown. To study the differential function of the VEGF isoforms in these particular aspects of vascular development, three different transgenic mice were generated: VEGF(120/120), VEGF(164/164) and VEGF(188/188), that express only VEGF120, VEGF164 or VEGF188, respectively. Postnatal blood vessel formation was studied in the retina, which is an excellent organ to study angiogenesis because of the unique structural properties of the retinal vascular bed. Subsequently, the cardiac outflow tract and pharyngeal arch system were analyzed during embryogenesis, since vascular remodeling and patterning play a crucial role in the establishment of the mature configuration of these vascular structures. Both vascular systems are of major clinical relevance. Retinal neovascularization, the major cause of blindness, is a complication of a variety of common eye diseases, including diabetic retinopathy, age-related macular degeneration, retinopathy of prematurity, and vascular occlusions. Abnormal remodeling of the pharyngeal arch system and the cardiac outflow tract, on the other hand, results in life-threatening congenital cardiovascular defects, and occurs in association with craniofacial, thymic and parathyroid defects in DiGeorge syndrome (DGS) that affects 1/4000 live births. Eigthy to ninety percent of DGS-affected individuals are heterozygous a micro-deletion of chromosome 22q111, but the search for causal genes in the remaining 10-20% of patients with DGS remains ungoing. Moreover, the variable penetrance and severity of this syndrome suggests the contribution of additional modifier genes outside this chromosomal region. Finally, deletions of chromosome 22q11 only encounter for 15% of all cases of conotruncal defects, and the other gene(s) involved in the pathogenesis of these conotruncal defects in remain to be identified. The identification and characterization of these additional causal and modifier genes is an important goal for the future. Extensive investigation of the various aspects of vascular development in the VEGF isoform specific mice, using the retina as a model, revealed that vascular development was normal in VEGF(164/164) mice (that only express VEGF164), indicating that this isoform contains all necessary information for normal (arterial and venous) outgrowth, remodeling and patterning of blood vessels. In contrast, VEGF(120/120) mice exhibited pronounced vascular defects, with impaired venous and severely defective arterial vascular development in the retina. VEGF(188/188) mice had normal venous development, but aborted retinal arterial outgrowth. Dramatically reduced retinal vascular outgrowth in the mice that exclusively express the soluble VEGF120 isoform indicates that the longer isoforms are crucial for the establisment of a VEGF-gradient that guides the endothelial cells towards the periphery of the retina. Moreover, mice that lack the VEGF164 isoform exhibit impaired arterial outgrowth despite normal arterial and venous differentiation. This observation provides evidence for the recent theory that arterial and venous differentiation is predetermined in endothelial cells rather than established after initial outgrowth of undifferentiated vessels, and dedicates a novel role to VEGF164 in outgrowth of arterially differentiated endothelial cells. Predominant arterial expression of Nrp-1 implies that VEGF164 may mediate arterial outgrowth via Nrp-1. Half of the VEGF(120/120) neonates die within a few hours after birth because of conotruncal defects that are typically observed in DiGeorge syndrome. Further analysis revealed that these mice also exhibit aortic arch anomalies, a cleft palate, micrognathia, as well as absent and/or ectopic parathyroid glands and thymus. Thus, absence of the VEGF164 isoform in mice causes the entire spectrum of characteristic lifethreatening cardiovascular malformations and craniofacial, thymic and parathyroid defects of DGS, while mice expressing only the VEGF164-isoform appear normal. VEGF164 expression consistently colocalized with its receptor, Nrp-1 at DGS predilection sites, suggesting that both provide critical guidance or differentiation cues for vascular remodeling. In the VEGF164 deficient mice, no neural crest cell migration or differentation defects were detected. Moreover, the DGS phenotype was most prominent in mice with severe vascularization defects, possibly indicating that derailed signaling by vascular growth factors may be more important than originally anticipated, and suggesting a vascular etiology underlying DGS. This vascular hypothesis implies that DGS may be primarily a vascular phenotype, irrespective of the involvement of neural crest cells. Taken together, our observations indicate that, while the distinct VEGF isoforms are redundant for initial vessel assembly and growth, they differ greatly in providing critical spatial guidance cues for vascular remodeling and, perhaps also for differentiation of neural crest cell-derived tissues. These data implicate that the VEGF164-isoform may represent a candidate disease effector or modifier in the pathogenesis of congenital cardiovascular malformations in general, and of DGS in particular. Finally, I would like to conclude with the recent words of Dr. D. Srivastava: "Discovery of the causes of complex genetic traits, such as congenital heart defects, has been difficult. However, the observation that secondary factors, be they genetic or environmental, may contribute to DiGeorge syndrome provides hope for the treatment and prevention of congenital heart defects. While prospects for gene therapy remain in the distant future, knowledge of the genetic pathways regulating cardiogenesis should lead to some of the secondary factors that may be modulated during the period of embryonic heart development. Given the rapid pace of discovery and the ever-increasing tools available to scientists and clinicians, the hope of translating genetic information regarding heart formation into tangible benefits for families with congenital heart defects has never been brighter".

Animals↗

[In vitro inhibitory effect of 23-HBA on angiogenesis].

AIM: To study the inhibitory effect of 23-HBA on angiogenesis in vitro. METHODS: The effect of 23-hydroxy butulinic acid (23-HBA) on the in vitro proliferation of human microcapillary endothelial cells(HMECs) was examined by sulfonylrhodamine B (SRB) assay. The effect of 23-HBA on endothelial cell migration, and tubule formation on Matrigel was also observed. The CD31 expression in HMECs was dectected by immunohistochemical staining. RESULTS: The proliferation of HMECs was inhibited significantly by 23-HBA with IC(50) being 40.44 mg/L. 23-HBA inhibited endothelial cell migration and tubule formation in a dose-dependent manner. The expression of CD31 in HMECs was reduced after treatment with 10 mg/L 23-HBA. CONCLUSION: 23-HBA can inhibit angiogenesis in vitro, which would become a promising antiangiogenic drug.

Angiogenesis Inhibitors↗

Postnatal neovascularization by endothelial progenitor cells immortalized with the simian virus 40T antigen gene.

Endothelial progenitor cells (EPCs) contribute to blood vessel formation in ischemic and tumorous tissues, but comprise only a small population in circulation. We attempted to immortalize putative EPCs from human cord blood. Human CD34+ cord blood cells were cultured in the presence of vascular endothelial growth factor (VEGF) and basic fibroblast growth factor (b-FGF), and transfected with a retroviral vector encoding the simian virus 40 large T (SV40T) antigen. This resulted in the immortalization of cord blood cells, leading to the establishment of several cell lines. One of these lines, HYCEC-1, exhibited a phenotype characteristic of the endothelial lineage, including expression of von Willebrand factor and VEGF receptor-2 (VEGFR-2/KDR/Flk-1) and uptake of acetylated-low density lipoprotein. Flow cytometric analysis revealed that HYCEC-1 cells were strongly positive for CD31 and CD146, moderately positive for CD144, weakly positive for CD133 and CD34, and negative for CD14 and CD45. HYCEC-1 cells formed capillary-like structures on basement matrix gel in vitro. Upon transplantation into the ischemic hind limb of nude rats, HYCEC-1 cells efficiently participated in neovascularization and augmented blood flow. The immortalized HYCEC-1 cells are suggested to be a class of EPCs that can efficiently participate in postnatal neovasculogenesis in the ischemic hind limb, and may also be a useful tool for studying tumor vessel formation.

AC133 Antigen↗

[Molecular basics of angiogenesis].

In the article we present the latest knowledge about angiogenesis. We have divided the paper into three main parts, in which the involvement of the extracellular matrix, cells, and cytokines/growth factors in the growth of new blood vessels is described. In brief, the extracellular compartment plays a crucial role in the formation of new vasculature. Degradation of matrix is a very important and precisely controlled process performed mostly by a family of proteins called matrix metallproteinases (MMPs). The extracellular compartment, through the special transmembrane proteins integrins, transmit a wide variety of signals into the cells and thus influence such cell behavior as proliferation, invasion, shape, migration, and maturation. Many products of matrix degradation are potent (mostly negative) regulators of angiogenesis; this self-limiting system prevents excessive proteolysis of the matrix components. The cells involved in the process are endothelial progenitor cells (EPCs), which are derived from bone marrow. The major surface antigens of the cells are CD34+, CD133+, and VEGFR2+. It has been demonstrated that EPCs are responsible for maintaining the functional integrity of endothelium. The number of EPCs in peripheral blood samples inversely correlates with cardiovascular risk factors. In the last section of the article the role of cytokines/growth factors is described. VEGF, as a key regulator of the initial steps of angiogenesis, controls the mobilization and incorporation of EPCs into the site of ischemia. The most important cytokine that facilitates the mobilization of EPCs from bone marrow is SDF-1, which is the strongest chemoattractant for EPCs. Ang-1, on the other hand, controls new blood vessel maturation and stabilization.

Animals↗

[The role of endothelial cells and endothelial precursor cells in angiogenesis].

Endothelium plays a key role in maintenance of vascular homeostasis in human organism. According to new data endothelial cells and hematopoietic cells have a common precursor in prenatal life--a hemangioblast, which explains the fact of sharing the same determinants on the surface of both type of cells. Circulating endothelial precursors were identified in adults and this suggests that hemangioblasts may be present not only during embriogenesis. In some clinical situations the increased numbers of endothelial cells and endothelial precursors were noted, and especially in patients with neoplastic diseases, which is probably the result of increased angiogenesis. Endothelial precursors are thought to be the promice for therapeutic purposes in future--to increase local angiogenesis.

Endothelial Cells↗

[Vascular endothelium regeneration therapy].

CD34 positive cells were first defined as endothelial progenitor cells(EPCs) from circulating mononuclear cells in peripheral blood. EPCs have shown to be mobilized from bone marrow by the various factors, incorporate into sites of physiological and pathological neovascularization and differentiate into mature endothelial cells (ECs). Post-natal vasculogenesis has been considered to be involved in neovascularization of adult tissues. Recently, freshly isolated CD34 positive cells transplantation has started as clinical trial for ischemic diseases. In the clinical situation, we should consider the cell number and cell quality derived from the patients who have atherosclerosis background, especially diabetes. Ex vivo expansion or gene modification of EPCs could be the strategies for the next generation cell therapy to overcome these issues.

Adult↗

Angioblasts in adult and its role in ocular disorders due to neovascularization.

Blood vessel formation includes vasculogenesis and angiogenesis. Traditionally vasculogenesis is believed to occur in embryo, forming blood vessels by the differentiation of angioblasts, while angiogenesis is defined as the formation of new blood vessels that originate from pre-existing vessels, which happens both in embryo and adult. However, recent studies on angioblasts have shown that new blood vessel formation due to angioblast differentiation, once was believed to happen exclusively in embryo, also occurs in adult. These findings not only help us to understand the pathogenesis of new blood vessel formation, but also provide some new clues to investigate new therapeutic target for the treatment of angiogenesis.

Adult↗

Vascular endothelial growth factor-toxin conjugate specifically inhibits KDR/flk-1-positive endothelial cell proliferation in vitro and angiogenesis in vivo.

Inhibition of tumor neovascularization has profound effects on the growth of solid tumors. An endothelial cell-specific cytotoxic conjugate was prepared by chemically linking recombinant vascular endothelial growth factor (VEGF165) and a truncated diphtheria toxin molecule (DT385). The treatment of subconfluent cultures of human umbilical vein endothelial cells and human microvascular endothelial cells with the VEGF165-DT385 conjugate resulted in a selective, dose-dependent inhibition of growth. Parallel experiments with either the free toxin or a mixture of VEGF and the toxin polypeptide did not affect proliferation (DNA synthesis) of these cells. The selective cytotoxicity correlated with the appropriate receptor expression (KDR/flk-1 positive) on the target cells. VEGF-toxin conjugate inhibited the growth of a murine hemangioma-derived endothelial cell line (Py-4-1), which was positive for flk-1 expression. Under similar conditions, the conjugate did not affect the proliferation of a receptor-negative ovarian cancer cell line in vitro. In an in vivo model of angiogenesis, the VEGF165-DT385 conjugate blocked basic fibroblast growth factor-induced neovascularization of the chick chorioallantoic membrane. These studies demonstrate the successful targeting of a cytotoxic polypeptide to proliferating vascular endothelial cells (normal and tumorigenic) and the potential utility of such conjugates in blocking tumor neovascularization.

Animals↗

Retinoic acid induces cells cultured from oral squamous cell carcinomas to become anti-angiogenic.

Retinoids have shown great promise as chemopreventive against the development of squamous cell carcinomas of the upper aerodigestive tract. However, the exact mechanism by which they block new tumors from arising is unknown. Here, we report that 13-cis- and all-trans-retinoic acid, used at clinically achievable doses of 10(-6) mol/L or less, can directly and specifically affect cell lines cultured from oral squamous cell carcinomas, inducing them to switch from an angiogenic to an anti-angiogenic phenotype. Although retinoic-acid-treated and untreated tumor cells make the same amount of interleukin-8, the major inducer of neovascularization produced by such tumor lines, they vary in production of inhibitory activity. Only the retinoic-acid-treated cells produce a potent angio-inhibitory activity that is able to block in vitro migration of endothelial cells toward tumor cell conditioned media and to halt neovascularization induced by such media in the rat cornea. Anti-angiogenic activity is induced in the tumor cells by low doses of retinoids in the absence of toxicity with a kinetics that suggest that it could be contributing to the effectiveness of the retinoids as chemopreventive agents.

Animals↗

[Endothelial cell function and angiogenesis].

Angiogenesis, a process of new blood vessel formation, is an integral part of development, wound repair and tumor growth. The formation of capillary networks requires a complex series of cellular events, in which endothelial cells locally degrade their basement membrane, migrate into the connective tissue stroma, proliferate at the migrating tip, enlongate and organize into capillary loops. In response to angiogenic stimuli, endothelial cells in culture develop networks of capillary-like tubes. In this paper, we showed the relationship between angiogenesis and diseases, the assay systems of angiogenesis and the reports of angiogenesis published recently.

Angiogenesis Inducing Agents↗

[Regulators of angiogenesis].

Endothelial cells lining the lumen of vessels are maintained in the quiescent state and play important physiological roles. Yet, they can be de-differentiated and become one of the most rapidly proliferating of all cell types when stimulated. Angiogenesis or neovascularization is defined as the formation of new capillary vessels from existent microvessels, which plays a major role in the evolvement of a vascular supply in tissue during development or remodeling and disease. Angiogenesis is believed to be regulated by the balance between inducers and inhibitors. In this review article, I will summarize the molecules that regulate the process of angiogenesis.

Angiogenesis Inducing Agents↗

[Shear stress and vascular formation].

Blood flow plays important roles in the morphogenesis of blood vessels. For instance, increases in blood flow induce dilatation of the blood vessels, while decreases in blood flow cause reduction of vessel diameter. Blood flow also stimulates angiogenesis. In these blood flow-dependent phenomena, wall shear stress generated by flowing blood that acts on vascular endothelial cells works as a key factor. Numerous in vivo and in vitro studies have demonstrated that mechanical forces, shear stress, actually modulate the morphology and many functions of endothelial cells, and these forces also alter their gene expression. More recently, a cis-acting shear stress responsive element was identified in the promoters of endothelial genes that respond to shear stress, suggesting a common mechanism linking biomechanical forces to gene expression. Details of the process in which shear stress-mediated changes in endothelial cell functions lead to vascular remodeling and angiogenesis, however, are not entirely clear. Elucidation of this problem will give us not only a better understanding of the morphogenesis of blood vessels but also new therapies that can help manage or prevent cardiovascular diseases including atherosclerosis.

Biomechanical Phenomena↗