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Updated: Jan 20, 2026

An Optic Nerve Crush Injury Murine Model to Study Retinal Ganglion Cell Survival
Published on: April 25, 2011
Effects of siRNA-Mediated Knockdown of GSK3β on Retinal Ganglion Cell Survival and Neurite/Axon Growth
Zubair Ahmed1, Peter J Morgan-Warren2,3, Martin Berry2
1Neuroscience and Ophthalmology, Institute of Inflammation and Ageing, University of Birmingham, Birmingham B15 2TT, UK. z.ahmed.1@bham.ac.uk.
Abstract:
There are contradictory reports on the role of the serine/threonine kinase isoform glycogen synthase kinase-3β (GSK3β) after injury to the central nervous system (CNS). Some report that GSK3 activity promotes axonal growth or myelin disinhibition, whilst others report that GSK3 activity prevents axon regeneration. In this study, we sought to clarify if suppression of GSK3β alone and in combination with the cellular-stress-induced factor RTP801 (also known as REDD1: regulated in development and DNA damage response protein), using translationally relevant siRNAs, promotes retinal ganglion cell (RGC) survival and neurite outgrowth/axon regeneration. Adult mixed retinal cell cultures, prepared from rats at five days after optic nerve crush (ONC) to activate retinal glia, were treated with siRNA to GSK3β (siGSK3β) alone or in combination with siRTP801 and RGC survival and neurite outgrowth were quantified in the presence and absence of Rapamycin or inhibitory Nogo-A peptides. In in vivo experiments, either siGSK3β alone or in combination with siRTP801 were intravitreally injected every eight days after ONC and RGC survival and axon regeneration was assessed at 24 days. Optimal doses of siGSK3β alone promoted significant RGC survival, increasing the number of RGC with neurites without affecting neurite length, an effect that was sensitive to Rapamycin. In addition, knockdown of GSK3β overcame Nogo-A-mediated neurite growth inhibition. Knockdown of GSK3β after ONC in vivo enhanced RGC survival but not axon number or length, without potentiating glial activation. Knockdown of RTP801 increased both RGC survival and axon regeneration, whilst the combined knockdown of GSK3β and RTP801 significantly increased RGC survival, neurite outgrowth, and axon regeneration over and above that observed for siGSK3β or siRTP801 alone. These results suggest that GSK3β suppression promotes RGC survival and axon initiation whilst, when in combination with RTP801, it also enhanced disinhibited axon elongation.
Insights
Suppressing GSK3β and RTP801 promotes retinal ganglion cell survival and axon regeneration after optic nerve injury. Combined knockdown significantly enhances RGC survival and neurite outgrowth more than individual treatments.
Area of Science:
- Neuroscience
- Regenerative Medicine
- Cell Biology
Background:
- Conflicting roles of Glycogen Synthase Kinase-3β (GSK3β) in central nervous system (CNS) injury response.
- GSK3β activity is reported to both promote and inhibit axon regeneration.
- RTP801 (REDD1) is a cellular-stress-induced factor with potential roles in CNS injury.
Purpose of the Study:
- To investigate if suppressing GSK3β and RTP801 promotes retinal ganglion cell (RGC) survival and axon regeneration after optic nerve crush (ONC).
- To evaluate the combined effect of GSK3β and RTP801 suppression on RGCs and axon regrowth.
- To assess the translational relevance using small interfering RNAs (siRNAs).
Main Methods:
- Primary adult rat retinal cell cultures and in vivo rat models of ONC.
- Treatment with siRNAs targeting GSK3β (siGSK3β) and RTP801 (siRTP801), alone and in combination.
- Quantification of RGC survival, neurite outgrowth, and axon regeneration, with and without Rapamycin or Nogo-A peptides.
Main Results:
- siGSK3β alone significantly increased RGC survival and initiated neurites, an effect sensitive to Rapamycin.
- siGSK3β treatment overcame Nogo-A-mediated inhibition of neurite growth.
- In vivo, siGSK3β enhanced RGC survival but not axon regeneration.
- siRTP801 increased both RGC survival and axon regeneration.
- Combined siGSK3β and siRTP801 treatment significantly enhanced RGC survival, neurite outgrowth, and axon regeneration beyond individual treatments.
Conclusions:
- GSK3β suppression promotes RGC survival and axon initiation.
- RTP801 knockdown enhances both RGC survival and axon regeneration.
- Combined suppression of GSK3β and RTP801 offers a synergistic approach to promote RGC survival and axon regeneration after CNS injury.
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