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Assessment of Vascular Regeneration in the CNS Using the Mouse Retina
Published on: June 23, 2014
Retinal microglia protect against vascular damage in a mouse model of retinopathy of prematurity
Jin Liu1, Jessica Kwan Wun Tsang1, Frederic Khe Cheong Fung1
1Department of Ophthalmology, School of Clinical Medicine, Li Ka Shing Faculty of Medicine, The University of Hong Kong, Hong Kong, Hong Kong SAR, China.
Abstract:
Retinopathy of prematurity (ROP) is a common cause of blindness in preterm babies. As a hypoxia-induced eye disease characterized by neovascularization, its association with retinal microglia has been noted but not well documented. We performed a comprehensive analysis of retinal microglia and retinal vessels in mouse oxygen-induced retinopathy (OIR), an animal model of ROP. In combination with a pharmacological inhibitory strategy, the role of retinal microglia in vascular network maintenance was investigated. Postnatal day (P) 7 C57BL/6J mouse pups with their nursing mother were exposed to 75% oxygen for 5 days to induce OIR. Age-matched room air-treated pups served as controls. On P12, P17, P21, P25, and P30, retinal microglia and vessels were visualized and quantified based on their location and activation status. Their relationship with retinal vessels was also analyzed. On P5 or P12, retinal microglia inhibition was achieved by intravitreal injection of liposomes containing clodronate (CLD); retinal vasculature and microglia were examined in P12 and P17 OIR retinae. The number of retinal microglia was increased in the superficial areas of OIR retinae on P12, P17, P21, P25, and P30, and most of them displayed an amoeboid (activated) morphology. The increased retinal microglia were associated with increased superficial retinal vessels in OIR retinae. The number of retinal microglia in deep retinal areas of OIR retinae also increased from P17 to P30 with a ramified morphology, which was not associated with reduced retinal vessels. Intravitreal injection of liposomes-CLD caused a significant reduction in retinal microglia. Loss of retinal microglia before hyperoxia treatment resulted in increased vessel obliteration on P12 and subsequent neovascularization on P17 in OIR retinae. Meanwhile, loss of retinal microglia immediately after hyperoxia treatment on P12 also led to more neovascularization in P17 OIR retinae. Our data showed that activated microglia were strongly associated with vascular abnormalities upon OIR. Retinal microglial activation continued throughout OIR and lasted until after retinal vessel recovery. Pharmacological inhibition of retinal microglia in either hyperoxic or hypoxic stage of OIR exacerbated retinal vascular consequences. These results suggested that retinal microglia may play a protective role in retinal vasculature maintenance in the OIR process.
Insights
Retinal microglia play a protective role in retinopathy of prematurity (ROP) by maintaining vascular networks. Inhibiting microglia worsened ROP, suggesting they are crucial for preventing blindness in preterm infants.
Area of Science:
- Ophthalmology
- Neuroscience
- Developmental Biology
Background:
- Retinopathy of prematurity (ROP) is a leading cause of blindness in premature infants.
- It is a hypoxia-induced eye disease characterized by abnormal blood vessel growth (neovascularization).
- The role of retinal microglia in ROP pathogenesis is not well understood.
Purpose of the Study:
- To investigate the role of retinal microglia in the development and maintenance of retinal vasculature in a mouse model of ROP.
- To determine if microglia have a protective or detrimental effect on retinal vessels during OIR.
Main Methods:
- Oxygen-induced retinopathy (OIR) model in C57BL/6J mice was established by exposing pups to 75% oxygen.
- Retinal microglia and vasculature were analyzed at various time points (P12-P30).
- Pharmacological inhibition of microglia using clodronate (CLD) was performed before and after hyperoxia exposure.
Main Results:
- Increased numbers of activated (amoeboid) microglia were found in superficial retinae of OIR mice, associated with increased superficial vessels.
- Microglia in deep retinal areas showed ramified morphology and were not linked to vessel reduction.
- Inhibition of microglia led to increased vessel obliteration and exacerbated neovascularization in the OIR model.
Conclusions:
- Activated retinal microglia are closely associated with vascular abnormalities in OIR.
- Microglial activation persists throughout the OIR process, even after vessel recovery.
- Pharmacological inhibition of microglia worsens OIR, indicating a protective role in maintaining retinal vasculature.
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