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Published on: January 26, 2024
Subretinal macrophages produce classical complement activator C1q leading to the progression of focal retinal
Haihan Jiao1, Matt Rutar1,2, Nilisha Fernando1
1The John Curtin School of Medical Research, The Australian National University, Building 131, Garran Rd, Canberra, ACT, 2601, Australia.
Insights
Complement component 1q (C1q) drives retinal degeneration and inflammation. Inhibiting C1q in the retina slows disease progression, offering a new treatment strategy for conditions like Age-Related Macular Degeneration (AMD).
Area of Science:
- Ophthalmology
- Immunology
- Neuroscience
Background:
- The alternative complement pathway is known to contribute to Age-Related Macular Degeneration (AMD).
- The role of the classical complement pathway, particularly complement component 1q (C1q), in retinal degeneration is not fully understood.
- Investigating C1q's contribution to photoreceptor loss and neuroinflammation is crucial.
Purpose of the Study:
- To investigate the role of C1q in progressive photoreceptor loss and neuroinflammation.
- To determine if inhibiting C1q can ameliorate retinal degeneration.
- To identify the source and localization of C1q in degenerating retinas.
Main Methods:
- Utilized wild-type, C1qa knockout mice, and C1q inhibitor treatment.
- Induced photo-oxidative damage (PD) to model retinal degeneration.
- Assessed retinal function, photoreceptor loss, inflammation, and inflammasome expression.
- Localized C1q in human AMD retinas and mouse models.
Main Results:
- Increased C1q levels correlated with photoreceptor cell death and macrophage recruitment.
- C1qa knockout mice showed reduced photoreceptor loss and inflammation 14 days post-damage.
- Intravitreal anti-C1q antibody treatment reduced retinal degeneration progression.
- C1q was localized to subretinal microglia/macrophages in AMD and PD retinas.
Conclusions:
- Subretinal macrophages, C1q, and the classical complement pathway contribute to progressive retinal degeneration.
- Local C1q produced by microglia/macrophages instigates inflammasome activation and inflammation.
- Retinal C1q neutralization presents a novel therapeutic strategy for complement-mediated retinal degenerations like AMD.
Background:
The role of the alternative complement pathway and its mediation by retinal microglia and macrophages, is well-established in the pathogenesis of Age-Related Macular Degeneration (AMD). However, the contribution of the classical complement pathway towards the progression of retinal degenerations is not fully understood, including the role of complement component 1q (C1q) as a critical activator molecule of the classical pathway. Here, we investigated the contribution of C1q to progressive photoreceptor loss and neuroinflammation in retinal degenerations.
Methods:
Wild-type (WT), C1qa knockout (C1qa-/-) and mice treated with a C1q inhibitor (ANX-M1; Annexon Biosciences), were exposed to photo-oxidative damage (PD) and were observed for progressive lesion development. Retinal function was assessed by electroretinography, followed by histological analyses to assess photoreceptor degeneration. Retinal inflammation was investigated through complement activation, macrophage recruitment and inflammasome expression using western blotting, qPCR and immunofluorescence. C1q was localised in human AMD donor retinas using immunohistochemistry.
Results:
PD mice had increased levels of C1qa which correlated with increasing photoreceptor cell death and macrophage recruitment. C1qa-/- mice did not show any differences in photoreceptor loss or inflammation at 7 days compared to WT, however at 14 days after the onset of damage, C1qa-/- retinas displayed less photoreceptor cell death, reduced microglia/macrophage recruitment to the photoreceptor lesion, and higher visual function. C1qa-/- mice displayed reduced inflammasome and IL-1β expression in microglia and macrophages in the degenerating retina. Retinal neutralisation of C1q, using an intravitreally-delivered anti-C1q antibody, reduced the progression of retinal degeneration following PD, while systemic delivery had no effect. Finally, retinal C1q was found to be expressed by subretinal microglia/macrophages located in the outer retina of early AMD donor eyes, and in mouse PD retinas.
Conclusions:
Our data implicate subretinal macrophages, C1q and the classical pathway in progressive retinal degeneration. We demonstrate a role of local C1q produced by microglia/macrophages as an instigator of inflammasome activation and inflammation. Crucially, we have shown that retinal C1q neutralisation during disease progression may slow retinal atrophy, providing a novel strategy for the treatment of complement-mediated retinal degenerations including AMD.
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