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An Optic Nerve Crush Injury Murine Model to Study Retinal Ganglion Cell Survival
Published on: April 25, 2011
Optic nerve crush induces spatial and temporal gene expression patterns in retina and optic nerve of BALB/cJ mice
Tasneem P Sharma, Colleen M McDowell, Yang Liu
1North Texas Eye Research Institute, Ft, Worth, TX USA. abe.clark@unthsc.edu.
Background:
Central nervous system (CNS) trauma and neurodegenerative disorders trigger a cascade of cellular and molecular events resulting in neuronal apoptosis and regenerative failure. The pathogenic mechanisms and gene expression changes associated with these detrimental events can be effectively studied using a rodent optic nerve crush (ONC) model. The purpose of this study was to use a mouse ONC model to: (a) evaluate changes in retina and optic nerve (ON) gene expression, (b) identify neurodegenerative pathogenic pathways and (c) discover potential new therapeutic targets.
Results:
Only 54% of total neurons survived in the ganglion cell layer (GCL) 28 days post crush. Using Bayesian Estimation of Temporal Regulation (BETR) gene expression analysis, we identified significantly altered expression of 1,723 and 2,110 genes in the retina and ON, respectively. Meta-analysis of altered gene expression (≥1.5, ≤-1.5, p < 0.05) using Partek and DAVID demonstrated 28 up and 20 down-regulated retinal gene clusters and 57 up and 41 down-regulated optic nerve clusters. Regulated gene clusters included regenerative change, synaptic plasticity, axonogenesis, neuron projection, and neuron differentiation. Expression of selected genes (Vsnl1, Syt1, Synpr and Nrn1) from retinal and ON neuronal clusters were quantitatively and qualitatively examined for their relation to axonal neurodegeneration by immunohistochemistry and qRT-PCR.
Conclusion:
A number of detrimental gene expression changes occur that contribute to trauma-induced neurodegeneration after injury to ON axons. Nrn1 (synaptic plasticity gene), Synpr and Syt1 (synaptic vesicle fusion genes), and Vsnl1 (neuron differentiation associated gene) were a few of the potentially unique genes identified that were down-regulated spatially and temporally in our rodent ONC model. Bioinformatic meta-analysis identified significant tissue-specific and time-dependent gene clusters associated with regenerative changes, synaptic plasticity, axonogenesis, neuron projection, and neuron differentiation. These ONC induced neuronal loss and regenerative failure associated clusters can be extrapolated to changes occurring in other forms of CNS trauma or in clinical neurodegenerative pathological settings. In conclusion, this study identified potential therapeutic targets to address two key mechanisms of CNS trauma and neurodegeneration: neuronal loss and regenerative failure.
Insights
Central nervous system (CNS) trauma causes neuronal loss and failed regeneration. This study identified key gene expression changes and potential therapeutic targets for CNS neurodegeneration and optic nerve injury.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Central nervous system (CNS) trauma and neurodegenerative disorders lead to neuronal apoptosis and regenerative failure.
- The rodent optic nerve crush (ONC) model is used to study pathogenic mechanisms and gene expression changes.
- Understanding these changes is crucial for developing effective treatments.
Purpose of the Study:
- Evaluate gene expression changes in the retina and optic nerve (ON) following ONC in mice.
- Identify neurodegenerative pathogenic pathways.
- Discover potential new therapeutic targets for CNS injury and neurodegeneration.
Main Methods:
- Utilized a mouse optic nerve crush (ONC) model.
- Employed Bayesian Estimation of Temporal Regulation (BETR) for gene expression analysis.
- Conducted meta-analysis of gene expression data using Partek and DAVID.
- Examined selected genes (Vsnl1, Syt1, Synpr, Nrn1) via immunohistochemistry and qRT-PCR.
Main Results:
- Significant alterations in gene expression were observed in both retina (1,723 genes) and ON (2,110 genes).
- Identified numerous up and down-regulated gene clusters related to regeneration, synaptic plasticity, axonogenesis, and neuron differentiation.
- Confirmed down-regulation of specific genes (Nrn1, Synpr, Syt1, Vsnl1) associated with neuronal function and differentiation.
Conclusions:
- Trauma-induced gene expression changes contribute to neurodegeneration and regenerative failure after ON injury.
- Identified unique genes (Nrn1, Synpr, Syt1, Vsnl1) down-regulated in the ONC model.
- The findings highlight potential therapeutic targets for neuronal loss and regenerative failure in CNS disorders.

