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Functional Analysis of Variants in Complement Factor I Identified in Age-Related Macular Degeneration and Atypical
Sarah de Jong1, Anita de Breuk1, Bjorn Bakker1
1Department of Ophthalmology, Donders Institute for Brain, Cognition and Behavior, Radboud University Medical Center, Nijmegen, Netherlands.
Insights
Genetic variants in complement factor I (CFI) can impair its function, leading to diseases like AMD and aHUS. This study found eight of eleven rare CFI variants significantly reduced C3b degradation, classifying them as likely pathogenic.
Area of Science:
- Immunology
- Genetics
Background:
- Complement factor I (FI) is crucial for regulating the complement system.
- Impaired FI function is linked to age-related macular degeneration (AMD) and atypical hemolytic uremic syndrome (aHUS).
- The functional impact of many complement factor I (CFI) variants with normal secretion levels remains unknown.
Purpose of the Study:
- To investigate the functional consequences of rare, predicted damaging complement factor I (CFI) missense variants.
- To determine the pathogenicity of eleven CFI variants with normal secretion levels using functional assays.
Main Methods:
- Recombinant expression of eleven CFI variants.
- C3b degradation assay to assess functional activity.
- Quantification of iC3b degradation product using ELISA.
- Analysis of three variants in AMD patient samples.
Main Results:
- Eight of eleven (73%) recombinant CFI variants exhibited significantly impaired C3b degradation.
- Variants p.Pro50Ala, p.Arg339Gln, p.Ile340Thr, p.Gly342Glu, p.Gly349Arg, p.Arg474Gln, p.Gly487Cys, and p.Gly512Ser were classified as likely pathogenic.
- A CADD score >20 suggests a high likelihood of impaired FI function.
Conclusions:
- Rare CFI variants with normal secretion but predicted damaging effects can exhibit reduced C3b degradation.
- Functional assessment via iC3b degradation assay is valuable for determining CFI variant pathogenicity.
- This research identifies novel pathogenic CFI variants contributing to complement-mediated diseases.
Abstract:
Complement factor I (FI) is a central inhibitor of the complement system, and impaired FI function increases complement activation, contributing to diseases such as age-related macular degeneration (AMD) and atypical hemolytic uremic syndrome (aHUS). Genetic variation in complement factor I (CFI) has been identified in both AMD and aHUS, with more than half of these variants leading to reduced FI secretion levels. For many of the variants with normal FI secretion, however, functional implications are not yet known. Here we studied 11 rare missense variants, with FI secretion levels comparable to wildtype, but a predicted damaging effects based on the Combined Annotation Dependent Depletion (CADD) score. Three variants (p.Pro50Ala, p.Arg339Gln, and p.Ser570Thr) were analyzed in plasma and serum samples of carriers affected by AMD. All 11 variants (nine for the first time in this study) were recombinantly expressed and the ability to degrade C3b was studied with the C3b degradation assay. The amount of degradation was determined by measuring the degradation product iC3b with ELISA. Eight of 11 (73%) mutant proteins (p.Pro50Ala, p.Arg339Gln, p.Ile340Thr, p.Gly342Glu, p.Gly349Arg, p.Arg474Gln, p.Gly487Cys, and p.Gly512Ser) showed significantly impaired C3b degradation, and were therefore classified as likely pathogenic. Our data indicate that genetic variants in CFI with a CADD score >20 are likely to affect FI function, and that monitoring iC3b in a degradation assay is a useful tool to establish the pathogenicity of CFI variants in functional studies.
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