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An Ex Vivo Explant Model for Studying Glial Interactions in the Mouse Retina
Published on: July 15, 2025
Microglia at Sites of Atrophy Restrict the Progression of Retinal Degeneration via Galectin-3 and Trem2 Interactions
Chen Yu1, Eleonora M Lad1, Rose Mathew1
1Department of Ophthalmology, Duke University School of Medicine; Durham, NC 27710, USA.
Abstract:
Degenerative diseases of the outer retina, including age-related macular degeneration (AMD), are characterized by atrophy of photoreceptors and retinal pigment epithelium (RPE). In these blinding diseases, macrophages are known to accumulate ectopically at sites of atrophy, but their ontogeny and functional specialization within this atrophic niche remain poorly understood, especially in the human context. Here, we uncovered a transcriptionally unique profile of microglia, marked by galectin-3 upregulation, at atrophic sites in mouse models of retinal degeneration and in human AMD. Using disease models, we found that conditional deletion of galectin-3 in microglia led to defects in phagocytosis and consequent augmented photoreceptor death, RPE damage and vision loss, suggestive of a protective role. Mechanistically, Trem2 signaling orchestrated the migration of microglial cells to sites of atrophy, and there, induced galectin-3 expression. Moreover, pharmacologic Trem2 agonization led to heightened protection, but only in a galectin-3-dependent manner, further signifying the functional interdependence of these two molecules. Likewise in elderly human subjects, we identified a highly conserved population of microglia at the transcriptomic, protein and spatial levels, and this population was enriched in the macular region of postmortem AMD subjects. Collectively, our findings reveal an atrophy-associated specialization of microglia that restricts the progression of retinal degeneration in mice and further suggest that these protective microglia are conserved in AMD.
Insights
Microglia with galectin-3 play a protective role in retinal degeneration by clearing cellular debris. This specialized microglial function, regulated by Trem2 signaling, is conserved in human age-related macular degeneration (AMD).
Area of Science:
- Ophthalmology
- Neuroscience
- Immunology
Background:
- Age-related macular degeneration (AMD) and other outer retinal degenerative diseases involve photoreceptor and retinal pigment epithelium (RPE) atrophy.
- The role and origin of macrophages accumulating at these atrophic sites are not well understood, particularly in humans.
Approach:
- Investigated microglial specialization in mouse models of retinal degeneration and human AMD.
- Utilized transcriptomic, protein, and spatial analyses.
- Employed genetic manipulation (galectin-3 deletion) and pharmacologic intervention (Trem2 agonization).
Key Points:
- Discovered a unique microglial profile with upregulated galectin-3 at atrophic sites in both mouse models and human AMD.
- Conditional deletion of galectin-3 in microglia impaired phagocytosis, exacerbating photoreceptor death, RPE damage, and vision loss.
- Trem2 signaling drives microglial migration to atrophic sites and induces galectin-3 expression, with Trem2 agonization offering protection dependent on galectin-3.
Conclusions:
- Identified an atrophy-associated microglial specialization that restricts retinal degeneration progression in mice.
- Demonstrated that this protective microglial population, characterized by galectin-3, is conserved in human AMD patients.
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