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Published on: July 14, 2016
Leber congenital amaurosis: genes, proteins and disease mechanisms
Anneke I den Hollander1, Ronald Roepman, Robert K Koenekoop
1Department of Human Genetics & Nijmegen Centre for Molecular Life Sciences, Radboud University Nijmegen Medical Centre, P.O. Box 9101, 6500 HB Nijmegen, The Netherlands.
Insights
Leber congenital amaurosis (LCA) is a severe inherited retinal disease causing early blindness. Identifying causative gene mutations is crucial for developing gene therapies to restore vision in affected individuals.
Area of Science:
- Ophthalmology
- Genetics
- Molecular Biology
Background:
- Leber congenital amaurosis (LCA) is the most severe form of inherited retinal dystrophy, leading to blindness or severe visual impairment in infants.
- Genetic mutations in at least 14 genes are known to cause LCA and juvenile retinal degeneration, accounting for approximately 70% of cases.
- Commonly mutated genes include CEP290, GUCY2D, and CRB1, with a specific CEP290 intronic mutation prevalent in North-Western European populations.
Purpose of the Study:
- To review the genetic basis of Leber congenital amaurosis (LCA).
- To discuss the molecular functions of LCA-associated genes.
- To explore the potential of gene replacement therapy for LCA.
Main Methods:
- Linkage analysis, homozygosity mapping, and candidate gene analysis were used to identify LCA-associated genes.
- Microarray-based, allele-specific primer extension analysis aids in identifying causative mutations in LCA patients.
- Gene therapy approaches using adeno-associated virus and lentivirus vectors have been tested in animal models.
Main Results:
- Fourteen genes have been identified, explaining a significant portion of LCA cases, with CEP290, GUCY2D, and CRB1 being the most frequent.
- LCA genes encode proteins involved in diverse retinal functions, including photoreceptor development, phototransduction, and vitamin A metabolism.
- Gene therapy has shown success in correcting LCA phenotypes in various animal models, and early clinical trials are underway for RPE65-related deficiencies.
Conclusions:
- Genetic heterogeneity in LCA necessitates comprehensive diagnostic approaches.
- The diverse functions of LCA genes highlight the complexity of retinal development and function.
- Gene replacement therapy holds promise for LCA treatment, but challenges like visual cortex development and cell viability must be addressed.
Abstract:
Leber congenital amaurosis (LCA) is the most severe retinal dystrophy causing blindness or severe visual impairment before the age of 1 year. Linkage analysis, homozygosity mapping and candidate gene analysis facilitated the identification of 14 genes mutated in patients with LCA and juvenile retinal degeneration, which together explain approximately 70% of the cases. Several of these genes have also been implicated in other non-syndromic or syndromic retinal diseases, such as retinitis pigmentosa and Joubert syndrome, respectively. CEP290 (15%), GUCY2D (12%), and CRB1 (10%) are the most frequently mutated LCA genes; one intronic CEP290 mutation (p.Cys998X) is found in approximately 20% of all LCA patients from north-western Europe, although this frequency is lower in other populations. Despite the large degree of genetic and allelic heterogeneity, it is possible to identify the causative mutations in approximately 55% of LCA patients by employing a microarray-based, allele-specific primer extension analysis of all known DNA variants. The LCA genes encode proteins with a wide variety of retinal functions, such as photoreceptor morphogenesis (CRB1, CRX), phototransduction (AIPL1, GUCY2D), vitamin A cycling (LRAT, RDH12, RPE65), guanine synthesis (IMPDH1), and outer segment phagocytosis (MERTK). Recently, several defects were identified that are likely to affect intra-photoreceptor ciliary transport processes (CEP290, LCA5, RPGRIP1, TULP1). As the eye represents an accessible and immune-privileged organ, it appears to be uniquely suitable for human gene replacement therapy. Rodent (Crb1, Lrat, Mertk, Rpe65, Rpgrip1), avian (Gucy2D) and canine (Rpe65) models for LCA and profound visual impairment have been successfully corrected employing adeno-associated virus or lentivirus-based gene therapy. Moreover, phase 1 clinical trials have been carried out in humans with RPE65 deficiencies. Apart from ethical considerations inherently linked to treating children, major obstacles for the treatment of LCA could be the putative developmental deficiencies in the visual cortex in persons blind from birth (amblyopia), the absence of sufficient numbers of viable photoreceptor or RPE cells in LCA patients, and the unknown and possibly toxic effects of overexpression of transduced genes. Future LCA research will focus on the identification of the remaining causal genes, the elucidation of the molecular mechanisms of disease in the retina, and the development of gene therapy approaches for different genetic subtypes of LCA.
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