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Published on: August 24, 2013
Novel anterior segment phenotypes resulting from forkhead gene alterations: evidence for cross-species conservation
Ordan J Lehmann1, Stephen Tuft, Glen Brice
1Department of Molecular Genetics, Institute of Ophthalmology, London, United Kingdom. ojlehmann@yahoo.com
Purpose:
Mutations in murine and human versions of an ancestrally related gene usually result in similar phenotypes. However, interspecies differences exist, and in the case of two forkhead transcription factor genes (FOXC1 and FOXC2), these differences include corneal or anterior segment phenotypes, respectively. This study was undertaken to determine whether such discrepancies provide an opportunity for identifying novel human-murine ocular phenotypes.
Methods:
Four pedigrees with early-onset glaucoma phenotypes secondary to segmental chromosomal duplications or deletions encompassing FOXC1 and 18 individuals from 9 FOXC2 mutation pedigrees underwent detailed ocular phenotyping. Subsequently, mice with mutations in Foxc1 or a related forkhead gene, Foxe3, were assessed for features of the human phenotypes.
Results:
A significant increase in central corneal thickness was present in affected individuals from the segmental duplication pedigrees compared with their unaffected relatives (mean increase 13%, maximum 35%, P < 0.05). Alterations in corneal thickness were present in mice heterozygous and homozygous for Foxe3 mutations but neither in Foxc1 heterozygotes nor the small human segmental deletion pedigree. Mutations in FOXC2 resulted in ocular anterior segment anomalies. These were more severe and prevalent with mutations involving the forkhead domain.
Conclusions:
Normal corneal development is dependent on the precise dose and levels of activity of certain forkhead transcription factors. The altered corneal thickness attributable to increased forkhead gene dosage is particularly important, because it may affect the clinical management of certain glaucoma subtypes and lead to excessive treatment. The FOXC1 and Foxe3 data, taken together with the novel ocular phenotypes of FOXC2 mutations, highlight the remarkable cross-species conservation of function among forkhead genes.
Insights
Genetic mutations in forkhead transcription factors can cause distinct ocular phenotypes between humans and mice. This study reveals altered corneal thickness in humans with FOXC1 duplications and novel anterior segment anomalies in FOXC2 mutations.
Area of Science:
- Genetics
- Ophthalmology
- Developmental Biology
Background:
- Forkhead transcription factors (FOX) are crucial for development.
- Human and mouse gene mutations often cause similar phenotypes, but interspecies differences exist.
- FOXC1 and FOXC2 gene mutations lead to distinct ocular phenotypes, specifically corneal versus anterior segment issues.
Purpose of the Study:
- To investigate if human-murine ocular phenotype discrepancies can identify novel genetic conditions.
- To analyze the ocular phenotypes associated with FOXC1 and FOXC2 gene mutations in humans and mice.
Main Methods:
- Detailed ocular phenotyping of human pedigrees with glaucoma secondary to FOXC1 or FOXC2 mutations.
- Assessment of ocular features in mice with Foxc1 or Foxe3 mutations.
- Comparison of human and murine phenotypes to identify conserved and divergent functions.
Main Results:
- Humans with FOXC1 duplications showed significantly increased central corneal thickness.
- Mice with Foxe3 mutations exhibited altered corneal thickness, unlike Foxc1 mutants.
- FOXC2 mutations caused anterior segment anomalies, more severe with forkhead domain involvement.
Conclusions:
- Normal corneal development relies on precise forkhead transcription factor dosage.
- Increased forkhead gene dosage can alter corneal thickness, impacting glaucoma management.
- Cross-species conservation of forkhead gene function is evident in novel ocular phenotypes.
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