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

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.