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A Phenotyping Regimen for Genetically Modified Mice Used to Study Genes Implicated in Human Diseases of Aging
Published on: July 14, 2016
A common haplotype in the complement regulatory gene factor H (HF1/CFH) predisposes individuals to age-related
Gregory S Hageman1, Don H Anderson, Lincoln V Johnson
1Department of Ophthalmology and Visual Sciences, Cell Biology and Functional Genomics Laboratory, University of Iowa, Iowa City, IA 52240, USA. gregory-hageman@uiowa.edu
Insights
Genetic variations in factor H (HF1), a complement pathway inhibitor, are linked to age-related macular degeneration (AMD) risk. Specific HF1 haplotypes significantly increase or decrease AMD susceptibility in affected individuals.
Area of Science:
- Ophthalmology
- Genetics
- Immunology
Background:
- Age-related macular degeneration (AMD) is a leading cause of irreversible blindness in older adults.
- Complement activation and drusen formation are implicated in AMD pathogenesis.
- Factor H (HF1) is a key inhibitor of the alternative complement pathway.
Purpose of the Study:
- To investigate the role of genetic variation in the factor H gene (HF1/CFH) in AMD.
- To determine the association of HF1 genetic variants with AMD risk.
Main Methods:
- Analysis of HF1 single nucleotide polymorphisms (SNPs) and haplotypes in AMD cases and controls.
- Genotyping of approximately 900 AMD cases and 400 matched controls.
- Statistical analysis including chi-squared tests and odds ratio calculations.
Main Results:
- Eight common HF1 SNPs were associated with AMD.
- Two missense variants (I62V and Y402H) showed highly significant associations with AMD.
- Specific HF1 haplotypes conferred significantly elevated or reduced risk of AMD, with one at-risk haplotype found in 50% of cases.
Conclusions:
- Genetic variation in factor H (HF1) plays a significant role in the pathogenesis of age-related macular degeneration (AMD).
- HF1 haplotypes influence AMD risk, suggesting complement dysregulation as a key factor.
- Combined genetic predisposition and environmental triggers may underlie AMD development.
Abstract:
Age-related macular degeneration (AMD) is the most frequent cause of irreversible blindness in the elderly in developed countries. Our previous studies implicated activation of complement in the formation of drusen, the hallmark lesion of AMD. Here, we show that factor H (HF1), the major inhibitor of the alternative complement pathway, accumulates within drusen and is synthesized by the retinal pigmented epithelium. Because previous linkage analyses identified chromosome 1q25-32, which harbors the factor H gene (HF1/CFH), as an AMD susceptibility locus, we analyzed HF1 for genetic variation in two independent cohorts comprised of approximately 900 AMD cases and 400 matched controls. We found association of eight common HF1 SNPs with AMD; two common missense variants exhibit highly significant associations (I62V, chi2 = 26.1 and P = 3.2 x 10(-7) and Y402H, chi2 = 54.4 and P = 1.6 x 10(-13)). Haplotype analysis reveals that multiple HF1 variants confer elevated or reduced risk of AMD. One common at-risk haplotype is present at a frequency of 50% in AMD cases and 29% in controls [odds ratio (OR) = 2.46, 95% confidence interval (1.95-3.11)]. Homozygotes for this haplotype account for 24% of cases and 8% of controls [OR = 3.51, 95% confidence interval (2.13-5.78)]. Several protective haplotypes are also identified (OR = 0.44-0.55), further implicating HF1 function in the pathogenetic mechanisms underlying AMD. We propose that genetic variation in a regulator of the alternative complement pathway, when combined with a triggering event, such as infection, underlie a major proportion of AMD in the human population.
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