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Updated: Sep 8, 2026

Oxygen-Induced Retinopathy Model for Ischemic Retinal Diseases in Rodents
Published on: September 16, 2020
Platelet-activating factor in vasoobliteration of oxygen-induced retinopathy
Martin Hervé Beauchamp1, Anne Marilise Marrache, Xin Hou
1Department of Pediatrics, Ophthalmology, and Pharmacology, Research Center of Hôpital Ste-Justine, Montréal, Québec, Canada.
Insights
Platelet-activating factor (PAF) directly causes retinal endothelial cell death, contributing to vasoobliteration in oxygen-induced retinopathy (OIR). This cell death, primarily necrosis, is mediated by thromboxane A2 (TXA2).
Area of Science:
- Ophthalmology
- Vascular Biology
- Cell Biology
Background:
- Oxygen-induced retinopathy (OIR) is a leading cause of vision loss in premature infants.
- Endothelial cell (EC) death plays a critical role in the pathogenesis of OIR.
- The specific mechanisms driving EC death in OIR remain incompletely understood.
Purpose of the Study:
- To investigate the direct role of platelet-activating factor (PAF) in causing retinovascular endothelial cell (EC) death.
- To determine the signaling pathways involved in PAF-induced EC death.
- To assess the potential of PAF receptor antagonists in mitigating OIR-related vascular damage.
Main Methods:
- Oxygen-induced retinopathy (OIR) model in rat pups was established.
- Retinovascular density was quantified using the adenosine diphosphatase (ADPase) technique.
- PAF levels, EC viability (MTT assay, propidium iodide uptake, TUNEL assay, lactate dehydrogenase release), and thromboxane (TX) production were measured.
- PAF receptor blockers and specific inhibitors were used to elucidate mechanisms.
Main Results:
- PAF levels were significantly elevated in retinas under OIR conditions and H2O2 exposure.
- PAF receptor blockers markedly inhibited retinal vasoobliteration in OIR by approximately 60%.
- PAF induced time- and concentration-dependent death of retinal ECs, primarily through necrosis, involving thromboxane A2 (TXA2) production.
Conclusions:
- PAF directly induces death of neuroretinal microvascular ECs, contributing to vasoobliteration in OIR.
- Thromboxane A2 (TXA2) is a key mediator in PAF-induced EC death.
- Targeting PAF signaling may offer a therapeutic strategy for ischemic retinopathies like diabetic retinopathy and retinopathy of prematurity.
Purpose:
To test whether platelet-activating factor (PAF) directly causes retinovascular endothelial cell (EC) death.
Methods:
Retinovascular density was calculated in rat pups exposed to 80% O(2) from postnatal days (P)6 to P14 (to produce oxygen-induced retinopathy [OIR]), using the adenosine diphosphatase (ADPase) technique, in animals treated with distinct PAF receptor blockers (PCA-4248, BN52021, or THG315). PAF levels were then measured in the retinas. Viability of ECs from piglets and humans in response to C-PAF (a stable PAF analogue) was determined by the reduction of the tetrazolium salt 3-(4,5-dimethyl thiazol-2yl)-2,5-diphenyl tetrazolium bromide (MTT) by viable cells, incorporation of propidium iodide (PI), TUNEL assay, and release of lactate dehydrogenase. Release of thromboxane (TX) was measured in the cell media.
Results:
PAF levels in retina were markedly increased by exposure of isolated rat retinas to H(2)O(2) (1 micro M) and of rat pups placed in 80% O(2). Exposure to 80% O(2) induced retinal vasoobliteration, which was equally significantly inhibited ( approximately 60%) by all PAF receptor blockers tested. C-PAF increased incorporation of PI by isolated rat retinal microvasculature. Also, C-PAF caused time- and concentration-dependent death of cultured retinal ECs, which was prevented by the PAF receptor antagonist CV-3988. This effect of C-PAF was selective on retinal and neurovascular ECs, but not on other ECs. DNA fragmentation (TUNEL) was hardly detected, and inhibition of apoptosis-related processes by nicotinamide, cyclosporin A, and Z-DEVD-FMK and Z-VAD-FMK (caspase inhibitors) barely protected against death in EC, whereas C-PAF increased release of lactate dehydrogenase, implying that necrosis is the nature of EC death. Finally, C-PAF-induced cell death was preceded by an increase in TXB(2) levels and was prevented by TXA(2) synthase inhibition (with CGS12970).
Conclusions:
The data suggest PAF plays a major role in vasoobliteration in OIR by triggering death of neuroretinal microvascular ECs. The cell death seems to be mediated at least in part by TXA(2). These effects of PAF may participate in ischemic retinopathies such as diabetes and retinopathy of prematurity.
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