3 research outputs found

    The effects of oxidative stress on the retinal structure and function

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    Des études antérieures ont démontré que le métabolisme de la rétine, son apport sanguin et sa consommation de l'oxygène sont plus élevés dans le noir (Riva C.E. et al. 1983, Wang L. et al. 1996, Tam B.M. and Moritz O.L. 2007). Les stimuli physiologiques jouent supposément un rôle important dans le développement des différents systèmes nerveux (Arthur W. Spira, David Parkinson 1991). La privation de la rétine de son stimulus physiologique, la lumière, est un moyen valable de démontrer la validité de ce concept. D'autres études ont affirmé que les injections de dichlorure de paraquat dans la cavité vitréenne causent une sévère rétinopathie (Rétinopathie induite par paraquat: RIP). Cette rétinopathie est provoquée par les dérivés réactifs de l'oxygène (DRO) générés par le paraquat (Cingolani C. et al. 2006, Lu L. et al. 2006). Le but de notre premier projet (''Dark rearing project'') était de déterminer si les conséquences nocives de l'hyperoxie postnatale chez les rats albinos SD pourraient être amoindries en élevant une portée de rats au noir. Nos résultats suggèrent qu'une augmentation du métabolisme de la rétine causée par la déprivation de lumière chez les ratons, pourrait protéger ou masquer certains effets néfastes de l'hyperoxie postnatale. Le but de notre deuxième étude (''Paraquat project'') était d'examiner les possibles points de similitude entre RIP et d'autres modèles de rétinopathies oxydatives étudiés présentement par notre équipe, à savoir: Rétinopathie induite par l'oxygène (RIO) et Rétinopathie induite par la lumière (RIL). Nos résultats suggèrent que l'injection de dichlorure de paraquat dans la cavité vitréenne cause des changements sévères de la fonction de la rétine, tandis que sa structure semble intacte. La sévérité de ces changements dépend inversement de la maturité de la rétine au moment de l'injection.In previous studies it has been shown that retinal metabolism, blood flow and oxygen consumption are significantly higher during dark adaptation (Riva C.E. et al. 1983, Wang L. et al. 1996, Tam B.M. and Moritz O.L. 2007). Physiological stimuli are supposed to play an important role in development of different neural systems (Arthur W. Spira, David Parkinson 1991). One way to demonstrate the accuracy of this statement is depriving the retina of its physiological stimulus: light. It has also been shown that an intravitreal injection of paraquat dichloride causes a severe retinopathy (Paraquat-Induced Retinopathy: PIR) resulting from the reactive oxygen species (ROS) that it generates (Cingolani C. et al. 2006, Lu L. et al. 2006). The purpose of our first project (''Dark rearing project'') was to determine whether the harmful effects of postnatal hyperoxia in albino SD rats could be decreased by dark rearing the rats. Our results would suggest that the increase in the retinal metabolic rate triggered by the dark-rearing period, would protect (or mask) some of the deleterious effects of postnatal hyperoxia. The purpose of our second study (''Paraquat project'') was to examine how the PIR could be compared to the other models of oxidative retinopathy currently studied by our team, namely: Oxygen-induced retinopathy (OIR) and Light-induced retinopathy (LIR). Our results suggest that an intravitreal injection of paraquat causes a severe functional but not structural retinopathy, the severity of which appears to be inversely related to the state of retinal maturation reached at time of injection

    Choroidal Involution Is a Key Component of Oxygen-Induced Retinopathy

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    International audiencePurpose: Retinopathy of prematurity (ROP) is a major cause of visual handicap in the pediatric population. To date, this disorder is thought to stem from deficient retinal vascularization. Intriguingly, functional electrophysiological studies in patients with mild or moderate ROP and in the oxygen-induced retinopathy (OIR) model in rats reveal central photoreceptor disruption that overlies modest retinal vessel loss; a paucity of retinal vasculature occurs predominantly at the periphery. Given that choroidal circulation is the major source of oxygen and nutrients to the photoreceptors, the authors set out to investigate whether the choroidal vasculature system may be affected in OIR.Methods: Rat models of OIR treating newborn animals with 80% or 50/10% alternated oxygen level for the first two postnatal weeks were used to mimic ROP in humans. Immunohistology staining and vascular corrosion casts were used to investigate the vessel layout of the eye. To investigate the effect of 15-deoxy-Δ12,14-PGJ(2) (15d-PGJ(2); a nonenzymatic product of prostaglandin D(2)) on endothelial cells, in vitro cell culture and ex vivo choroid explants were employed and intravitreal injections were performed in animals.Results: The authors herein demonstrate that deficient vascularity occurs not only in the retinal plexus but also in the choroid. This sustained, marked choroidal degeneration is specifically confined to central regions of the retina that present persistent photoreceptor loss and corresponding functional deficits. Moreover, the authors show that 15d-PGJ(2) is a prominent contributor to this choroidal decay.Conclusions: The authors demonstrate for the first time pronounced, sustained choroidal vascular involution during the development of ROP. Findings also suggest that effective therapeutic strategies to counter ROP should consider choroidal preservation

    Ischemic neurons prevent vascular regeneration of neural tissue by secreting semaphorin 3A

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    The failure of blood vessels to revascularize ischemic neural tissue represents a significant challenge for vascular biology. Examples include proliferative retinopathies (PRs) such as retinopathy of prematurity and proliferative diabetic retinopathy, which are the leading causes of blindness in children and working-age adults. PRs are characterized by initial microvascular degeneration, followed by a compensatory albeit pathologic hypervascularization mounted by the hypoxic retina attempting to reinstate metabolic equilibrium. Paradoxically, this secondary revascularization fails to grow into the most ischemic regions of the retina. Instead, the new vessels are misdirected toward the vitreous, suggesting that vasorepulsive forces operate in the avascular hypoxic retina. In the present study, we demonstrate that the neuronal guidance cue semaphorin 3A (Sema3A) is secreted by hypoxic neurons in the avascular retina in response to the proinflammatory cytokine IL-1β. Sema3A contributes to vascular decay and later forms a chemical barrier that repels neo-vessels toward the vitreous. Conversely, silencing Sema3A expression enhances normal vascular regeneration within the ischemic retina, thereby diminishing aberrant neovascularization and preserving neuroretinal function. Overcoming the chemical barrier (Sema3A) released by ischemic neurons accelerates the vascular regeneration of neural tissues, which restores metabolic supply and improves retinal function. Our findings may be applicable to other neurovascular ischemic conditions such as stroke
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