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Vibratome Sectioning Mouse Retina to Prepare Photoreceptor Cultures
Published on: December 22, 2014
Myelin regulatory factor deficiency is associated with the retinal photoreceptor defects in mice
Xiaowei Yu1, Nannan Sun1, Xue Yang1
1State Key Laboratory of Ophthalmology, Zhongshan Ophthalmic Center, Sun Yat-sen University, Guangzhou, China.
Abstract:
Previously, we reported the myelin regulatory factor (MYRF) as a candidate gene for nanophthalmos. We have also produced Myrf knockdown (Myrf+/-) mouse strain to investigate the cellular and molecular phenotypes of reduced MYRF expression in the retina. Myrf+/- mouse strain was generated using the CRISPR/Cas9 system. Optomotor response system, electroretinogram (ERG), spectral-domain optical coherence tomography (SD-OCT), histology, and immunohistochemistry were performed to evaluate retinal spatial vision, electrophysiological function, retinal thickness, and pathological changes in cone or rod photoreceptors, respectively. RNA sequencing (RNA-seq) was performed to investigate the underlying molecular mechanism linking Myrf deficiency with photoreceptor defects. The genotype and phenotype of CRISPR/Cas9-induced Myrf+/- mice and their offspring were comprehensively investigated. Photoreceptor defects were detected in the retinas of Myrf+/- mice. Visual acuity and ERG responses were decreased in Myrf+/- mice compared with the control mice (Myrf+/+). The loss of cone and rod neurons was proportional to the decreased outer nuclear layer (ONL) thickness. Moreover, RNA-seq revealed that phototransduction and estrogen signaling pathways played important roles in the Kyoto Encyclopedia of Genes and Genomes (KEGG) analysis. Myrf+/- mouse strain provides a good model to investigate the function of the MYRF gene. Photoreceptor defects with impaired functions of spatial vision and retinal electrophysiology indicate an important role played by MYRF in retinal development. Alterations in phototransduction and estrogen signaling pathways play important roles in linking Myrf deficiency with retinal photoreceptor defects.
Insights
Reduced myelin regulatory factor (MYRF) expression in mice causes photoreceptor defects, impairing vision and retinal function. This study highlights MYRF
Area of Science:
- Ophthalmology
- Genetics
- Neuroscience
Background:
- Myelin regulatory factor (MYRF) was previously identified as a candidate gene for nanophthalmos.
- Reduced MYRF expression is investigated for its effects on retinal cellular and molecular phenotypes.
Purpose of the Study:
- To generate and characterize a Myrf knockdown (Myrf+/-) mouse model to study the consequences of reduced MYRF in the retina.
- To investigate the cellular, molecular, and functional impacts of MYRF deficiency on retinal photoreceptors and visual function.
Main Methods:
- CRISPR/Cas9 gene editing was used to create the Myrf+/- mouse strain.
- A comprehensive analysis including optomotor response, electroretinography (ERG), SD-OCT, histology, and RNA sequencing was performed.
- Genotype and phenotype of the Myrf+/- mice and their offspring were thoroughly evaluated.
Main Results:
- Myrf+/- mice exhibited photoreceptor defects in their retinas.
- Significant decreases in visual acuity and ERG responses were observed in Myrf+/- mice compared to controls.
- Loss of cone and rod neurons correlated with reduced outer nuclear layer (ONL) thickness.
- RNA sequencing identified dysregulation in phototransduction and estrogen signaling pathways.
Conclusions:
- The Myrf+/- mouse strain serves as a valuable model for studying MYRF gene function in retinal development.
- MYRF plays a critical role in retinal development, as evidenced by photoreceptor defects and impaired visual and electrophysiological functions.
- Altered phototransduction and estrogen signaling pathways are implicated in the retinal defects associated with Myrf deficiency.
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