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Hypoxia and vascular endothelial growth factor selectively up-regulate angiopoietin-2 in bovine microvascular endothelial cells.

Recent studies have shown that the angiopoietin-Tie2 system is a predominant regulator of vascular integrity. In this study, we investigated the effect of two known angiogenic stimuli, hypoxia and vascular endothelial growth factor (VEGF), on these molecules. VEGF induced both a time- and concentration-dependent increase in angiopoietin-2 (Ang2) mRNA expression in bovine microvascular endothelial cells. This up-regulation was derived primarily from an increased transcription rate as evidenced by nuclear run-on assay and mRNA decay study. The increased Ang2 expression upon VEGF treatment was almost totally abolished by inhibition of tyrosine kinase or mitogen-activated protein kinase and partially by suppression of protein kinase C. Hypoxia also directly increased Ang2 mRNA expression. In contrast, Ang1 and Tie2 responded to neither of these stimuli. The enhanced Ang2 expression following VEGF stimulation and hypoxia was accompanied by de novo protein synthesis as detected by immunoprecipitation. In a mouse model of ischemia-induced retinal neovascularization, Ang2 mRNA was up-regulated in the ischemic inner retinal layer, and remarkable expression was observed in neovascular vessels. These data suggest that both hypoxia- and VEGF-induced neovascularization might be facilitated by selective induction of Ang2, which deteriorates the integrity of preexisting vasculature.

Angiopoietin-2↗

Activation of AP-1 and increased synthesis of MMP-9 in the rabbit retina induced by lipid hydroperoxide.

PURPOSE: We identified the temporal expression of activator protein-1 (AP-1) and matrix metalloproteinases (MMPs) after linoleic acid hydroperoxide (LHP) induction of retinal neovascularization. METHODS: After injection of LHP into the vitreous of rabbits, samples were collected for AP-1 binding activity and mRNA for MMP-9 and MMPs activity. AP-1 binding activity was measured by electrophoretic mobility shift assay. MMP-9 activity was measured by zymography and mRNA by quantitative RT-PCR. RESULTS: AP-1 binding activity was increased at 1-3 hr. MMP-9 mRNA levels were increased at 3 hr in the neural retina and by 12 hr in the retinal pigment epithelium (RPE) layer. MMP-9 proteolytic activity was elevated within the neural retina and within the vitreous and in the RPE-interphotoreceptor matrix (IPM) at 12 hr and peaked at 24 hr or 4 days. CONCLUSIONS: LHP increases the transcription factor AP-1 which in turn may regulate retinal MMP-9 synthesis during neovascularization.

Animals↗

Hypoxia-regulated transgene expression in experimental retinal and choroidal neovascularization.

Recombinant AAV vectors mediate efficient and sustained transgene expression in retinal tissues and offer a powerful approach to the local, sustained delivery of angiostatic proteins for the treatment of ocular neovascular disorders. The application of such strategies may also require regulated gene expression to minimize the potential for unwanted adverse effects. In this study, we have evaluated the effect of a hypoxia-responsive element (HRE) on the kinetics of recombinant adeno-associated (rAAV)-mediated reporter gene expression in murine models of retinal and choroidal neovascularization. In murine ischaemia-induced retinal neovascularization, intravitreal delivery of rAAV.HRE.GFP results in reporter gene expression specifically at sites of vascular closure during the period of active neovascularization and not after vector delivery in normal controls. In murine laser-induced choroidal neovascularization, subretinal delivery of rAAV.HRE.GFP results in reporter gene expression at sites of active neovascularization but not elsewhere or after vector delivery in normal controls. HRE-driven gene expression offers an attractive strategy for the targeted and regulated delivery of angiostatic proteins to the retina in the management of neovascular disorders.

Animals↗

Retinal endovascular surgery for central retinal vein occlusion: initial experience of four surgeons.

PURPOSE: The rate and magnitude of spontaneous visual recovery are very poor in central retinal vein occlusion (CRVO). In the first follow-up year, the Central Vein Occlusion Study Group reported that only 6% of eyes recovered > or = 3 lines of vision and none recovered > or = 8 lines of vision. Retinal endovascular surgery (REVS) is vitrectomy followed by cannulation of retinal vessels with injection of tissue plasminogen activator. After reports of one surgeon's experience suggested that the procedure promotes recovery of vision, other surgeons began to offer REVS to their patients. This report discusses the initial experience of four surgeons using REVS to treat CRVO. METHODS: In this prospective, consecutive case series, patients with CRVO for > 1 week and visual acuity of < 20/50 were offered REVS and were followed by the authors. The main outcome measure was recovery of visual acuity. RESULTS: This series represents the initial 25 consecutive REVS cases of the 4 authors (5-7 cases per author). The median CRVO duration was 2 months (mean 2.9, months), and the average preoperative visual acuity was 20/400 (< or = 20/200 in 80% of cases). Intravitreal triamcinolone acetonide (IVTA) was administered intraoperatively in three cases and at some time postoperatively in six cases. Overall, 18 eyes (72%) recovered > or = 3 lines of visual acuity, and 9 (36%) recovered > or = 8 lines of vision. Among the surgeons, the rates of > or = 3-line visual recovery ranged from 57% to 100%, and the rates of > or = 8-line visual recovery ranged from 14% to 71%. Of the 22 eyes that initially underwent REVS without intraoperative IVTA injection, 13 (59%) recovered > or = 3 lines of vision and 5 (23%) recovered > or = 8 lines of vision. Complications included macular edema (28%), anterior segment or retinal neovascularization (24%), and subsequent cataract surgery (5 [23%] of the 22 preoperatively phakic eyes). One eye had an intraoperative retinal detachment that was treated but recurred 4 months after REVS, and two of the eyes with anterior segment neovascularization developed late-onset traction retinal detachments (at 8 and 13 months after REVS). CONCLUSION: Although the authors were on the "learning curve" of experience during this series, REVS appears to promote visual recovery far in excess of what would be expected to occur spontaneously, and IVTA injection greatly improved outcomes. We believe that mastery of REVS techniques and the inclusion of IVTA injection may lead to better visual results and lower complication rates.

Adult↗

Pentoxifylline inhibition of vasculogenesis in the neonatal rat retina.

PURPOSE: The zeta isozyme of protein kinase C (PKC) is essential for activation of the transcription factor nuclear factor (NF)kappaB and transcription of vascular endothelial growth factor (VEGF). This study examined the antiangiogenic potential of an existing drug, pentoxifylline (PTX), which inhibits PKC-dependent activation of NFkappaB and is reported to prevent hypoxia-induced expression of VEGF. METHODS: Neovascularization was induced by maintaining neonatal rats for 10 full days in 80% oxygen, interrupted daily by 30 minutes in room air followed by a progressive return to 80% oxygen. On experimental day 11, they were placed in room air until they were killed on day 17. Daily intraperitoneal injections of PTX in saline (25 or 75 mg/kg per day), or saline alone, were administered from day 6 through day 16. Retinal neovascularization was scored, and avascular areas (AVAs) were measured in ADPase stained retinas. RESULTS: PTX inhibited radial extension of retinal vessels, causing increases in AVA of 65% (P < 0.01) and 33% (P < 0.15) at the lower and upper doses, respectively. A significant increase in mean neovascular score was seen at the lower dose (P < 0.0001), but analysis of variance indicated that neovascularization was strongly and positively influenced by the AVA (P < 0.0001) and only weakly stimulated by PTX (P < 0.05). CONCLUSIONS: Systemic PTX significantly inhibited VEGF-mediated retinal vasculogenesis, but was not effective in reducing neovascularization in the oxygen-exposed neonatal rat.

Animals↗

Vascular consequences of retinectomy.

OBJECTIVE: To define the vascular sequelae of retinectomy. DESIGN: Clinical and angiographic survey of patients who had undergone retinectomy procedures. PATIENTS: Twenty consecutive patients with ambulatory vision and attached posterior retina after retinectomy procedures underwent ophthalmic examination, including retinal biomicroscopy, indirect ophthalmoscopy with scleral indentation, and peripheral retinal fluorescein angiography. RESULTS: Ten eyes (50%) showed anterior retinal neovascularization (NV), with vessels derived from the ciliary body or posterior retina. Neovascularization occurred in residual anterior retina adjacent to the retinectomy, in detached anterior retina demarcated by laser in quadrants not involved by retinectomy, and in fibrinous membranes extending anterior to the retinectomy edge. This was associated with postoperative vitreous hemorrhages in two patients. Iris NV and inferior iridectomy occlusion were strongly associated with retinal NV (Fisher's exact test, P < .005). No patient had neovascular glaucoma or optic disc NV during a median follow-up of 250 days (range, 121 to 465). CONCLUSIONS: Retinectomy may have profound secondary effects on ocular vascular circulation, resulting in retinal NV in association with iris NV, occlusion of inferior iridectomies, and vitreous hemorrhage. Complete intraoperative removal of residual anterior retina to the ora serrata in quadrants involved by retinectomy, combined with prophylactic retinal laser treatment from the vitreous base to the ora in the remaining quadrants, is recommended to prevent the development of retinal NV and its associated complications.

Adult↗

[Inhibition of proliferation of retinal pigment epithelium in vitro: vitamin A pharmacodynamics I].

BACKGROUND: In proliferative vitreoretinopathy and choroidal neovascularization, retinal pigment epithelial (RPE) cells proliferate among other cell types. Cell proliferation is controlled by many factors. One such factor is the "superfamily" of nuclear receptors. Ligands of these receptors are vitamin A and D, triiodothyronine and dexamethasone. All-trans-retinal (atR) inhibits human RPE-cell proliferation. AtR binds to the nuclear ligand-dependent transcription factors RAR (retinoic acid receptor) and RXR (retinoid X receptor). Pharmacodynamics of atR were investigated with respect to inhibition of RPE cell proliferation. MATERIALS AND METHODS: Primary human RPE cell lines were used up to passage 5. RPE cells were incubated with atR ranging from 1 pM up to 1 microM. AtR was added every other day for 7 days. Cell proliferation was determined by cell counting. RESULTS: AtR inhibited RPE cell proliferation in a biphasic manner. Two IC50 values were calculated, one in the picomolar range, 10 pM (5-24, 95% confidence interval) and one in the nanomolar range, 17 nM (8-37). Furthermore, inhibition of cell proliferation was examined using specific RAR agonists. Agonists of the RAR-b subgroup inhibited cell proliferation at the lowest concentrations. CONCLUSIONS: RPE cell proliferation in vitro is inhibited by agonists of RAR. Agonists of the RAR-b subgroup inhibit RPE cell proliferation at the lowest concentrations.

Cell Count↗

[Diabetes and peripheral arterial occlusive disease: therapeutic potential and pro-angiogenic strategies].

Cardiovascular complications are the leading cause of morbidity and mortality in patients with diabetes mellitus; up to 80% of deaths in patients with diabetes are closely associated with vascular disease. The ability of the organism to form a collateral network of blood vessels constitutes an important response to vascular occlusive disease and determines to a large part the clinical consequences and severity of tissue ischemia. The development of new vessels is significantly reduced in diabetic patients with coronary or peripheral artery disease. This probably contributes to the severe course of limb ischemia in diabetic patients, in which peripheral artery disease often results in foot ulceration and lower extremity amputation. Diabetic retinopathy remains one of the major causes of acquired blindness in developed nations. This is true despite the development of laser treatment, which can prevent blindness in the majority of those who develop macular edema or proliferative diabetic retinopathy. The hallmark of diabetic retinopathy is the lack of microvessels in the macula, leading to hypoxia, associated with peripheral retinal neovascularization that may ultimately cause severe vitreous cavity bleeding and/or retinal detachment. The factors that stimulate retinal blood vessel growth have not been fully defined, but there is accumulating evidence that the renin-angiotensin-bradykinin system may be involved in a number of retinal vascular disorders, including retinopathy of prematurity and proliferative diabetic retinopathy. Only a few studies have specifically evaluated the effect of diabetes on angiogenesis in ischemic vascular disease and in the retina. Moreover, the mechanisms by which diabetes could both limit the formation of new blood vessels in most organs and simultaneously induce proliferative diabetic retinopathy remain largely undefined. In the present review, we aimed to briefly describe the main molecular mechanisms involved in the ischemia-induced angiogenesis, and their alterations in diabetes. Possible therapeutic strategies to restore angiogenesis in diabetic patients are also listed.

Arterial Occlusive Diseases↗

Development of central retinal vein occlusion in dural carotid-cavernous fistula.

We investigated a 46-year-old woman with central retinal vein occlusion complicating dural carotid-cavernous fistula, resulting in severe loss of visual acuity. Venous stasis retinopathy observed on the first examination progressed severely so that central retinal vein occlusion with retinal neovascularization developed 3 months later. A transvascular embolization discontinuing the feeders from the external carotid artery improved the retinal circulation and the visual acuity. These results indicate that the cause of the progression from venous stasis retinopathy to central retinal vein occlusion is the elevation of pressure in the cavernous sinus.

Arteriovenous Fistula↗

Treatment of proliferative diabetic retinopathy with panretinal cryotherapy.

Panretinal cryoablation was performed on 100 eyes with retinal neovascularization and vitreous hemorrhage. Of those 100 eyes, 70 had neovascularization and recurrent hemorrhage despite previous panretinal laser photocoagulation, and 30 eyes had media opacities precluding laser treatment. Sixty applications, random and focal, were placed in each eye. Forty-six percent of eyes achieved better visual acuity, 32% were unchanged, and 22% were worse. Eighty-three percent of eyes had vision of 20/200 or better. In eyes without prior laser photocoagulation, 83% were clear of vitreous hemorrhage following cryoablation, and in eyes with previous panretinal photocoagulation, 75% were free of vitreous hemorrhage after cryoablation.

Adult↗

Effect of light on oxygen-induced retinopathy in the mouse.

PURPOSE: To examine the effect lf light on retinal neovascularization and vasculogenesis in a reproducible and quantifiable model of oxygen-induced proliferative retinopathy in the mouse. METHODS: C57Bl/6J mice were reared in room air, 68% oxygen, or 75% oxygen and were exposed to darkness, low cyclical light (200-350 lux), or high-intensity continuous light (3000-4500 lux). The entire retinal vascular pattern was visualized in fluorescein-dextran perfused flat-mount preparations. Proliferative retinopathy was quantified by counting neovascular nuclei in 6 microns cross-sections of whole eyes. RESULTS: Light exposure did not exacerbate the proliferative retinopathy that was seen after 68% oxygen exposure, which induced a meager proliferative response, nor after 75% oxygen exposure, which induced an exuberant proliferative response. In room air, retinas from all three illumination groups had normal vascular patterns. CONCLUSIONS: In this model of oxygen-induced retinopathy, under the conditions tested, light neither exacerbated the hyperoxia-induced neovascularization nor affected normal retinal vascular development.

Animals↗

Detection of vascular endothelial growth factor (VEGF) protein in vascular and non-vascular cells of the normal and oxygen-injured rat retina.

Vascular endothelial growth factor (VEGF) is a potent and specific endothelial cell cytokine that can be up-regulated by hypoxia. There is evidence that VEGF is a significant mediator in retinal neovascular diseases and other disorders in which hypoxia is believed to influence the pathogenesis. Here we demonstrate the spatial relationships among areas of retinal non-perfusion, VEGF protein and vascular endothelial cells throughout the retina, and relate these results to cellular distribution of VEGF in cross section. Newborn albino rats were oxygen-injured by cycles of alternating 50% and 10% oxygen for 14 days and then placed in room air. On days 16, 21 and 26, oxygen-injured and control (raised in room air) rats were sacrificed, enucleated and retinas were dissected and fixed for whole mount immunostaining for VEGF or embedding in glycol methacrylate for VEGF immunohistochemistry. Intact eyes taken on days 16 and 20 were processed similarly. Vascular endothelial cells were demonstrated by staining whole-mounted retinas for adenosine diphosphatase (ADPase) activity. Preretinal neovascular growths (i.e., abnormal vessels extending from the retina into the vitreous) were VEGF-positive. There was also a pan-retinal distribution of non-endothelial cells that were VEGF-positive in both room air and oxygen-injured rats, with stronger immunostaining in day 16 oxygen-injured retinas. In cross-section, VEGF staining was confirmed in preretinal growths, normal retinal vessels, cells in the inner nuclear layer (primarily Müller cells) and ganglion cells. Retinas which had been incubated with nonimmune IgG or absorbed anti-VEGF antibody showed little or no staining. In conclusion, we have identified cells of the inner retina which express VEGF. The production of VEGF by these cells--in particular, Müller cells--may promote preretinal neovascularization in oxygen-injured eyes. We have found, moreover, that the combination of immunohistochemistry and ADPase staining of whole mount preparations is a unique and powerful tool for evaluating relationships between presumed areas of retinal ischemia, VEGF (and other cytokines) and retinal blood vessels, within an entire retina. This approach can be used to study any proliferative retinal disorders in which VEGF is a potential component of the pathogenesis.

Animals↗

Cryoretinopexy for proliferative diabetic retinopathy.

Cryoretinopexy can be used in the management of proliferative diabetic retinopathy. Indications include retinal neovascularization following photocoagulation or with opaque media, and anterior segment neovascularization. Of the six eyes in five patients treated with transconjunctival cryoretinopexy only one demonstrated regression of neovascularization; in this group, vision improved in two eyes, remained the same in three eyes and decreased in one eye. Of the 14 eyes in 14 patients treated with anterior transscleral cryoablation 5 demonstrated regression of posterior segment neovascularization and 2 demonstrated regression of anterior segment neovascularization; in this group, vision improved in 3 eyes, remained the same in 2 eyes and decreased in 9 eyes. No complications were associated with transconjunctival therapy, whereas uveitis (in 14 eyes), vitreous hemorrhage (in 2 eyes) and traction retinal detachment (in 5 eyes) were noted following transscleral therapy. Further studies are required to determine the risk/benefit ratio of cryoablation for proliferative diabetic retinopathy.

Adult↗

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↗

Treatment of proliferative diabetic retinopathy. Long-term results of argon laser photocoagulation.

Panretinal photocoagulation (PRP) is the treatment of choice for proliferative diabetic retinopathy. Indications for treatment are the presence of disc new vessels or the presence of new vessels elsewhere with hemorrhage. Rubeosis iridis and retinal neovascularization undergo involution following panretinal photocoagulation. The long-term visual results are excellent excepting for eyes with diffuse diabetic retinal ischemia. Long-term follow-up and repeat photocoagulation as needed are advised.

Adult↗

Retinal pigment epithelial cells release inhibitors of neovascularization.

Human retinal pigment epithelial (RPE) cells in culture were found to release a substance (or substances) that causes the regression of new blood vessels on the chick embryonic yolk sac and inhibits proliferation of fetal bovine aortic endothelial cells and human retinal microvessel endothelial cells in vitro. Neither astrocytes nor fibroblasts under identical test conditions released detectable inhibitors of neovascularization or endothelial cell growth. Subconfluent and superconfluent cultures of human RPE cells released higher levels of inhibitor than confluent cultures.

Animals↗

Normal vascular development in mice deficient in endothelial NO synthase: possible role of neuronal NO synthase.

PURPOSE: Nitric oxide formation by nitric oxide synthase (NOS) has been implicated in vascular injury and retinal neovascularization during oxygen-induced retinopathy. However, the role of NOS in normal retinal vascular development and growth has not been studied. The purpose of these experiments was to characterize the expression of NOS in relation to vascular development and to determine the effect of deleting endothelial NOS (eNOS) on this process. METHODS: Retinal vascular development was analyzed in 150 eNOS+/+ and eNOS-/- mice ranging from 1 day to 6 months old by using a combination of morphometric and biochemical approaches. The pattern of vascular development was analyzed in retinal tissue sections and whole-mount preparations labeled with fluorescein-conjugated Griffonia simplicifolia lectin. Analysis of vascular density and arterial diameter were performed with the lectin-labeled whole-mounts using computer-assisted morphometry. NO production was quantified by measuring retinal levels of nitrate/nitrite accumulation using the Greiss reaction. Western blotting techniques with isoform-specific NOS antibodies were used to evaluate differences in levels of NOS protein expression. Retinal distribution of nNOS was characterized using nNOS immunocytochemistry and NADPH diaphorase histochemistry. RESULTS: These analyses showed that the rate and pattern of retinal vascular development in eNOS-/- mice were comparable with those in wild-type control mice. Measurement of vascular density showed no significant differences between the two strains. The amount of NO production in the eNOS-/- retina was also equivalent to that in the eNOS+/+ retina. Analysis of nNOS expression within the eNOS+/+ and eNOS-/- mice showed similar levels of total nNOS protein in the two strains. Inducible NOS was not detected in either strain. Studies of nNOS distribution showed intense labeling of the deep capillary plexus in the eNOS-/- retina. This was not seen in the wild-type retinas. The number of neuronal cells showing NADPH-diaphorase activity was also significantly increased in the eNOS-/- mice. CONCLUSIONS: Development of the retinal vasculature occurs normally without eNOS. The observations of similar levels of NO production, perivascular redistribution of nNOS and increased numbers of NADPH-diaphorase reactive neurons in the eNOS-/- retinas suggest that increases in vascular-associated nNOS activity compensate for the eNOS deficiency in the developing mutant retina.

Animals↗

Role of the vitreous in diabetic retinopathy. II. Active and inactive vitreous changes.

The course of the vitreoretinal relationship in 272 eyes with diabetic retinopathy was studied retrospectively in an attempt to identify the prognostic role of the vitreous. In eyes with initial nonproliferative diabetic retinopathy, the development of neovascularization had a positive correlation with eventual partial posterior vitreous detachment (PVD) and a negative correlation with complete PVD. In eyes with initial proliferative diabetic retinopathy, those with active vitreous changes had a poor prognosis and those with inactive vitreous changes, an apparently good prognosis. Photocoagulation for retinal neovascularization was successful in most eyes with stable no-PVD but less successful in eyes that progressed to partial PVD. Therefore, considering the diabetic vitreous changes from a prognostic standpoint, the data suggest that if early proliferative changes are observed, photocoagulation before partial PVD develops might be considered.

Age Factors↗