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Published on: April 2, 2021
A Potential Gut-Retina Axis in Retinopathy of Prematurity: Emerging Perspectives on Microbiome-Mediated Modulation of
Shohan Shetty1, Robert Luca1, Sarah Hilkert Rodriguez2
1Pritzker School of Medicine, University of Chicago, Chicago, IL 60637, USA.
Insights
Early gut microbiome changes in preterm infants may influence retinopathy of prematurity (ROP) development. This review explores the gut-retina axis, linking microbial imbalances to ROP via insulin-like growth factor-1 and vascular endothelial growth factor signaling.
Area of Science:
- Neonatal microbiome research
- Ophthalmology
- Developmental biology
Background:
- Retinopathy of prematurity (ROP) is a major cause of childhood blindness.
- ROP involves abnormal retinal vascularization, linked to the IGF-1/VEGF pathway.
- Early gut dysbiosis is increasingly implicated as a factor in ROP pathogenesis.
Purpose of the Study:
- To review current evidence on the association between the neonatal gut microbiome and ROP.
- To explore the proposed "microbiome-IGF-1-VEGF-retina" axis.
- To identify potential biomarkers and preventive strategies for ROP.
Main Methods:
- Synthesis of human cohort studies.
- Analysis of multi-omics data.
- Review of experimental animal models (e.g., rodent oxygen-induced retinopathy).
Main Results:
- Severe ROP in preterm infants is associated with an altered gut microbiome composition (more facultative anaerobes, fewer obligate anaerobes).
- Microbiome-derived metabolites can influence systemic IGF-1, HIF-1α, and VEGF signaling pathways.
- Animal models demonstrate a functional link between gut microbial changes and retinal neovascularization.
Conclusions:
- The neonatal gut microbiome may modulate ROP development through metabolic and inflammatory signaling affecting retinal vascularization.
- The proposed microbiome-IGF-1-VEGF-retina axis offers a framework for understanding ROP.
- Further mechanistic and longitudinal studies are needed to confirm causality and develop interventions.
Abstract:
Retinopathy of prematurity (ROP) is a leading cause of childhood blindness characterized by disrupted physiologic vascularization followed by pathologic neovascularization, classically organized around the insulin-like growth factor-1 (IGF-1)-vascular endothelial growth factor (VEGF) axis in the retina. Increasing evidence suggests that early-life gut dysbiosis may act as an upstream modifier of this biphasic process. In this review, we synthesize human cohort studies, multi-omics analyses, and experimental animal models examining associations between the neonatal gut microbiome and ROP. Preterm infants who develop severe ROP demonstrate enrichment of facultative anaerobes and reduced acquisition of obligate anaerobes, alongside altered predicted metabolic capacity. Microbiome-derived metabolites, including short-chain fatty acids, bile acid derivatives, and lipid mediators, have been shown in experimental systems to influence systemic IGF-1 production, hypoxia-inducible factor-1α stabilization, and VEGF signaling. Rodent oxygen-induced retinopathy models offer a translation framework to assess the functional link between microbial perturbation and retinal angiogenic responses. Collectively, these findings support a conceptual microbiome-IGF-1-VEGF-retina axis in which early intestinal dysbiosis may modulate inflammatory tone, metabolic signaling, and retinal vascular development. Although current evidence remains largely associative, integrating microbiome profiling with mechanistic and longitudinal studies may clarify potential causal pathways and identify novel biomarkers or preventive strategies for severe ROP.
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