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Genetic heterogeneity in microcornea-cataract: five novel mutations in CRYAA, CRYGD, and GJA8
Lars Hansen1, Wenliang Yao, Hans Eiberg
1Wilhelm Johannsen Centre for Functional Genome Research, Department G, Institute of Medical Biochemistry and Genetics, Panum Institute, University of Copenhagen, Copenhagen, Denmark. larsh@imbg.ku.dk
Purpose:
To unravel the molecular genetic background in families with congenital cataract in association with microcornea (CCMC, OMIM 116150).
Methods:
CCMC families were recruited from a national database on hereditary eye diseases; DNA was procured from a national gene bank on hereditary eye diseases and by blood sampling from one large family. Genomewide linkage analysis, fine mapping, and direct genomic DNA sequencing of nine cataract candidate genes were applied. Restriction enzyme digests confirmed identified mutations.
Results:
Analyses of 10 Danish families with hereditary congenital cataract and microcornea revealed five novel mutations. Three of these affected the crystallin, alpha-A gene (CRYAA), including two mutations (R12C and R21W) in the crystallin domain and one mutation (R116H) in the small heat shock domain. One mutation (P189L) affected the gap junction protein alpha 8 (GJA8), and one mutation (Y134X) was detected in crystallin gamma-D (CRYGD).
Conclusions:
The identification of a CRYGD mutation adds another gene to those that may be mutated in CCMC and underscores the genetic heterogeneity of this condition. Three CRYAA mutations at the R116 position, in association with CCMC, suggest that R116 represents a CCMC-mutational hotspot. The CCMC phenotype demonstrates variable expression with regard to cataract morphology and age of appearance. Clinical heterogeneity, including additional malformation of the anterior segment of the eye, confirm that dedicated cataract genes may be involved in the largely unknown developmental molecular mechanisms involved in lens-anterior segment interactions.
Insights
Genetic analysis of congenital cataract with microcornea (CCMC) identified five novel mutations in CRYAA, GJA8, and CRYGD genes. This highlights genetic heterogeneity and potential mutational hotspots for CCMC.
Area of Science:
- Ophthalmology and genetics
- Molecular biology of hereditary eye diseases
Background:
- Congenital cataract in association with microcornea (CCMC) is a rare inherited eye condition.
- The genetic basis of CCMC is not fully understood, necessitating further molecular investigation.
Purpose of the Study:
- To identify the molecular genetic factors underlying congenital cataract with microcornea (CCMC) in affected families.
- To unravel the genetic heterogeneity and identify potential mutational hotspots for CCMC.
Main Methods:
- Recruitment of CCMC families from a national hereditary eye disease database.
- Genomewide linkage analysis, fine mapping, and direct DNA sequencing of candidate genes.
- Confirmation of identified mutations using restriction enzyme digests.
Main Results:
- Five novel mutations were identified in 10 Danish families with hereditary CCMC.
- Three mutations in the crystallin, alpha-A (CRYAA) gene, including two in the crystallin domain and one in the small heat shock domain.
- One mutation in the gap junction protein alpha 8 (GJA8) and one in crystallin gamma-D (CRYGD) were also detected.
Conclusions:
- The discovery of a CRYGD mutation expands the known genetic spectrum of CCMC, emphasizing its genetic heterogeneity.
- Three CRYAA mutations at position R116 suggest this site is a mutational hotspot for CCMC.
- The variable clinical expression and heterogeneity of CCMC indicate complex interactions between lens and anterior segment development genes.
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