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Quantifying the Activity of cis-Regulatory Elements in the Mouse Retina by Explant Electroporation
Published on: June 28, 2011
A typology of photoreceptor gene expression patterns in the mouse
Joseph C Corbo1, Connie A Myers, Karen A Lawrence
1Department of Pathology and Immunology, Washington University School of Medicine, St. Louis, MO 63110, USA.
Abstract:
Mutations in photoreceptor-enriched genes have been implicated in dozens of human retinal diseases, yet no systematic analysis of rod and cone gene expression patterns has been carried out. In addition, although cone photoreceptor loss accounts for much of the morbidity of retinal disease, relatively few cone-specific genes are known. In this study, we carried out microarray and in situ hybridization analyses of the mouse Neural retina leucine zipper gene (Nrl) mutant, which shows an en masse conversion of rods into cones, to establish a typology of photoreceptor gene expression and to identify novel cone-specific genes. We found a total of 18 new cone-enriched genes, some of which map near uncloned retinal disease loci. Several of these genes have a dorsal-ventral (D-V) pattern of expression similar to that of short- or medium-wavelength opsins. We carried out microarray analysis of dorsal and ventral microdissected WT retina and found additional photoreceptor genes with an asymmetric distribution. Overall, we found that photoreceptor genes fall on an expression spectrum from rod-specific to cone-specific, with many showing varying degrees of rod and cone coexpression. These expression patterns can be reliably predicted from microarray data alone. Our results demonstrate definitive molecular differences between rods and cones that may underlie the physiological differences between these two classes of photoreceptors.
Insights
Researchers identified new cone-specific genes by studying mouse models with altered photoreceptor development. This work reveals molecular differences between rod and cone cells, crucial for understanding retinal diseases.
Area of Science:
- Molecular Biology
- Genetics
- Neuroscience
Background:
- Photoreceptor-enriched gene mutations cause human retinal diseases.
- Cone photoreceptor loss is a major cause of visual morbidity, yet cone-specific genes are poorly understood.
- A systematic analysis of rod and cone gene expression is lacking.
Purpose of the Study:
- To establish a typology of photoreceptor gene expression.
- To identify novel cone-specific genes using a mouse model.
- To investigate gene expression patterns in photoreceptors.
Main Methods:
- Microarray analysis of Neural retina leucine zipper (Nrl) mutant mice.
- In situ hybridization analysis.
- Microarray analysis of dorsal and ventral microdissected wild-type retina.
Main Results:
- Identified 18 novel cone-enriched genes, some near retinal disease loci.
- Discovered dorsal-ventral expression patterns in photoreceptor genes.
- Found photoreceptor genes exist on a spectrum from rod-specific to cone-specific, with coexpression.
Conclusions:
- Definitive molecular differences exist between rod and cone photoreceptors.
- Gene expression patterns can be predicted from microarray data.
- Identified cone-specific genes may be relevant to retinal disease mechanisms.

