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Monitoring Dynamic Growth of Retinal Vessels in Oxygen-Induced Retinopathy Mouse Model
Published on: April 2, 2021
The neurovascular retina in retinopathy of prematurity
Anne B Fulton1, Ronald M Hansen, Anne Moskowitz
1Department of Ophthalmology, Children's Hospital and Harvard Medical School, 300 Longwood Ave., Boston, MA 02115-5737, USA. anne.fulton@childrens.harvard.edu
Insights
Retinopathy of prematurity (ROP) persistently alters photoreceptor structure and function, impacting vision in premature infants. Early intervention targeting neural retina cells may improve outcomes for children at risk.
Area of Science:
- Ophthalmology
- Developmental Biology
- Neuroscience
Background:
- Retinopathy of prematurity (ROP) is a major cause of childhood visual impairment.
- While ROP is characterized by abnormal retinal vasculature, the neural retina plays a critical role in its pathogenesis.
- ROP onset coincides with significant developmental changes in the retina, increasing energy demands.
Purpose of the Study:
- To investigate the role of the neural retina in retinopathy of prematurity.
- To compare neural and vascular features in human subjects and animal models of ROP.
- To identify potential therapeutic targets for ROP.
Main Methods:
- Non-invasive electroretinography (ERG), psychophysical tests, and image analysis.
- Biochemical, anatomical, and molecular biological investigations in rat models.
- Comparison of data from human subjects and rat models with normal development.
Main Results:
- ROP, even mild cases, causes primary and persistent alterations in photoreceptor structure and function.
- Post-receptor neurons and retinal vasculature are also affected, with subtle anomalies and functional deficits persisting long-term.
- Neurovascular abnormalities observed during active ROP may resolve, but underlying neural deficits remain.
Conclusions:
- The neural retina, particularly photoreceptors, is a key target in ROP.
- Persistent structural and functional deficits in neural retina cells occur after ROP.
- Targeting photoreceptor and post-receptor neurons offers a promising strategy for improving outcomes in ROP.
Abstract:
The continuing worldwide epidemic of retinopathy of prematurity (ROP), a leading cause of childhood visual impairment, strongly motivates further research into mechanisms of the disease. Although the hallmark of ROP is abnormal retinal vasculature, a growing body of evidence supports a critical role for the neural retina in the ROP disease process. The age of onset of ROP coincides with the rapid developmental increase in rod photoreceptor outer segment length and rhodopsin content of the retina with escalation of energy demands. Using a combination of non-invasive electroretinographic (ERG), psychophysical, and image analysis procedures, the neural retina and its vasculature have been studied in prematurely born human subjects, both with and without ROP, and in rats that model the key vascular and neural parameters found in human ROP subjects. These data are compared to comprehensive numeric summaries of the neural and vascular features in normally developing human and rat retina. In rats, biochemical, anatomical, and molecular biological investigations are paired with the non-invasive assessments. ROP, even if mild, primarily and persistently alters the structure and function of photoreceptors. Post-receptor neurons and retinal vasculature, which are intimately related, are also affected by ROP; conspicuous neurovascular abnormalities disappear, but subtle structural anomalies and functional deficits may persist years after clinical ROP resolves. The data from human subjects and rat models identify photoreceptor and post-receptor targets for interventions that promise improved outcomes for children at risk for ROP.
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