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Subretinal Injection of Gene Therapy Vectors and Stem Cells in the Perinatal Mouse Eye
Published on: November 25, 2012
Gene therapy and transplantation in the retinofugal pathway
Alan R Harvey1, Mats Hellström, Jenny Rodger
1School of Anatomy and Human Biology, The University of Western Australia, Crawley, WA, Australia. alan.harvey@uwa.edu.au
Abstract:
The mature CNS has limited intrinsic capacity for repair after injury; therefore, strategies are needed to enhance the viability and regrowth of damaged neurons. Here we review gene therapy studies in the eye, aimed at improving the survival and regeneration of injured retinal ganglion cells (RGCs). To target RGCs most current methods use recombinant adeno-associated viral vectors (AAV), usually serotype-2 (AAV2), that are injected into the vitreal chamber of the eye. This vector provides long-term transduction of adult RGCs. Strong, constitutive promoters such as CMV and/or beta-actin are commonly used but cell-specific promoters have also been tested. Transgenes encoded by AAV have been selected to limit cell death, enhance growth factor expression, or promote growth cone responsiveness. We have assessed the effects of AAV vectors in adult rodent models (i) after optic nerve (ON) crush and (ii) after transplantation of peripheral nerve (PN) onto the cut ON, a procedure that induces injured RGCs to regenerate axons over longer distances. AAV-CNTF-GFP promotes RGC survival and axonal regrowth in mice after ON crush, and in rats after ON crush or PN transplantation. In rats, intravitreal injection of AAV-BDNF-GFP also increases RGC viability but does not promote regeneration. RGC viability and axonal regrowth is further enhanced when AAV-CNTF-GFP is injected into transgenic mice that over-express bcl-2. Reconstituted PN grafts containing Schwann cells that were transduced ex vivo with lentiviral (LV) vectors encoding a secretable form of CNTF support RGC axonal regrowth, however grafts containing Schwann cells transduced with LV-BDNF or LV-GDNF are less successful. We have also quantified the transduction efficiency and tropism of different AAV vectors injected intravitreally. AAV 2/2 and AAV 2/6 showed highest levels of transduction, AAV 2/8 the lowest, and each serotype displayed different transduction profiles for retinal cells. We are also studying the long-term impact of AAV2-mediated CNTF or BDNF expression on the dendritic morphology of RGCs in normal and PN grafted retinas. Analysis of regenerating RGCs intracellularly injected with lucifer yellow indicates gene-specific changes in dendritic structure that likely impact upon visual function.
Insights
Gene therapy using adeno-associated viral vectors (AAV) shows promise for enhancing retinal ganglion cell (RGC) survival and axonal regrowth after optic nerve injury. AAV-CNTF-GFP effectively promotes RGC regeneration in rodent models.
Area of Science:
- Neuroscience
- Ophthalmology
- Gene Therapy
Background:
- The mature central nervous system (CNS) has limited self-repair capabilities following injury.
- Developing strategies to enhance the survival and regeneration of damaged neurons, particularly retinal ganglion cells (RGCs), is crucial for restoring vision.
- Gene therapy offers a promising approach to deliver therapeutic genes to RGCs.
Purpose of the Study:
- To review gene therapy studies utilizing adeno-associated viral vectors (AAV) for improving RGC survival and regeneration.
- To assess the efficacy of different AAV vectors and transgenes in promoting RGC repair after optic nerve injury in rodent models.
- To investigate the impact of gene therapy on RGC dendritic morphology and potential visual function.
Main Methods:
- Review of gene therapy studies employing recombinant adeno-associated viral vectors (AAV), typically serotype-2 (AAV2), for intravitreal injection.
- Assessment of AAV vector effects in adult rodent models with optic nerve (ON) crush or peripheral nerve (PN) transplantation onto the cut ON.
- Quantification of transduction efficiency and tropism of different AAV serotypes, and analysis of RGC dendritic morphology using intracellular injection.
Main Results:
- AAV-CNTF-GFP demonstrated significant RGC survival and axonal regrowth in mice and rats after ON crush and PN transplantation.
- AAV-BDNF-GFP increased RGC viability in rats but did not promote regeneration; combining AAV-CNTF-GFP with bcl-2 overexpression further enhanced RGC survival and regrowth.
- Different AAV serotypes (AAV 2/2, 2/6, 2/8) exhibited varying transduction efficiencies and retinal cell tropism; lentiviral vectors (LV) with CNTF in Schwann cells supported RGC regrowth.
Conclusions:
- Gene therapy with AAV vectors, particularly AAV-CNTF-GFP, holds significant potential for promoting RGC survival and axonal regeneration after optic nerve injury.
- The choice of AAV serotype and transgene is critical for optimizing therapeutic outcomes and targeting specific retinal cells.
- Further research into the long-term effects of gene therapy on RGC structure and function is warranted to fully restore visual capacity.
