Related Experiment Video
Updated: Apr 16, 2026

Primary Cell Cultures to Study the Regeneration Potential of Murine Müller Glia after MicroRNA Treatment
Published on: March 28, 2022
Profiling of microRNAs involved in retinal degeneration caused by selective Müller cell ablation
Sook Hyun Chung1, Mark Gillies1, Yuki Sugiyama2
1Macular Research Group, Clinical Ophthalmology and Eye Health, Save Sight Institute, University of Sydney, Sydney, Australia.
Abstract:
Dysfunction of Müller cells has been implicated in the pathogenesis of several retinal diseases. In order to understand the potential contribution of Müller cells to retinal disease better, we have developed a transgenic model in which foci of Müller cell ablation can be selectively induced. MicroRNAs (miRNAs), small non-coding RNAs that are involved in post-transcriptional modulation, have critical functions in various biological processes. The aim of this study was to profile differential expression of miRNAs and to examine changes in their target genes 2 weeks after Müller cell ablation. We identified 20 miRNAs using the miScript HC PCR array. Data analysis using two target gene prediction databases (TargetScan and mirTarBase) revealed 78 overlapping target genes. DAVID and KEGG pathway analysis suggested that the target genes were generally involved in cell apoptosis, p53, neurotrophin, calcium, chemokine and Jak-STAT signalling pathways. Changes in seven target genes including Cyclin D2, Caspase 9, insulin-like growth factor 1, IL-1 receptor-associated kinase (IRAK), calmodulin (CALM) and Janus kinase 2 (Jak2), were validated with qRT-PCR and western blots. The cellular localisation of cleaved-caspase 9, Cyclin D2, Jak2 and CALM was examined by immunofluorescence studies. We found that the transcription of some miRNAs was positively, rather than negatively, correlated with their target genes. After confirming that overexpressed miR-133a-3p was localised to the outer nuclear layer in the damaged retina, we validated the correlation between miR-133a-3p and one of its predicted target genes, cyclin D2, with a luciferase assay in 661 photoreceptor cells. Results revealed by miRNA profiling, target gene analysis and validation were generally consistent with our previous findings that selective Müller cell ablation causes photoreceptor degeneration and neuroinflammation. Our data on alterations of miRNAs and their target gene expression after Müller cell ablation provide further insights into the potential role of Müller cell dysfunction in retinal disease.
Insights
Müller cell ablation in a transgenic model revealed altered microRNA (miRNA) expression and target genes involved in retinal disease pathways. This provides insights into Müller cell dysfunction
Area of Science:
- Ophthalmology
- Molecular Biology
- Genetics
Background:
- Müller cell dysfunction is linked to retinal diseases.
- A transgenic model for Müller cell ablation was created to study disease mechanisms.
- MicroRNAs (miRNAs) are key regulators of gene expression with critical biological functions.
Purpose of the Study:
- To profile differential miRNA expression after Müller cell ablation.
- To identify and analyze the target genes affected by Müller cell ablation.
- To investigate the role of miRNAs and their targets in retinal disease pathogenesis.
Main Methods:
- Developed a transgenic model for selective Müller cell ablation.
- Utilized miScript HC PCR array for miRNA profiling.
- Employed TargetScan and mirTarBase for target gene prediction.
- Performed DAVID and KEGG pathway analysis.
- Validated target gene expression using qRT-PCR and Western blots.
- Confirmed miRNA-target gene correlation with luciferase assay.
Main Results:
- Identified 20 differentially expressed miRNAs and 78 overlapping target genes.
- Pathway analysis indicated involvement of apoptosis, p53, and signaling pathways.
- Validated changes in key genes like Cyclin D2, Caspase 9, and Jak2.
- Observed positive correlation between some miRNA and target gene transcription.
- Confirmed miR-133a-3p and cyclin D2 interaction in photoreceptor cells.
Conclusions:
- Müller cell ablation leads to photoreceptor degeneration and neuroinflammation.
- Altered miRNA and target gene expression provides insights into Müller cell dysfunction in retinal diseases.
- This study enhances understanding of molecular mechanisms in retinal pathogenesis.

