Active Cells, Biochemistry & Physiology Genetics & Molecular Biology

Development of CRISPR strategies to treat inherited retinal diseases

In plain English

AI plain-English summary

A single genetic typo in the *Ush2a* gene can sentence a young person to blindness, and this research team has already corrected that exact error in mice using CRISPR gene editing. This matters because inherited retinal diseases are a leading cause of untreatable blindness in young people, and current gene therapies are often useless—they rely on delivery vehicles called AAV vectors that are too small to carry the large genes needed for many forms of the condition. The researchers have built a new delivery system using DNA minicircles that sidesteps that size limit, potentially making gene therapy possible for a much wider range of retinal disorders. If this succeeds, it could transform how we treat inherited blindness. The team runs clinical trials, so they are positioned to move findings from the lab bench directly into patients. But the project is fundamentally curiosity-driven: it asks how CRISPR corrects genes inside retinal cells and how ectopic gene expression is regulated. That basic understanding is essential—without it, attempts to translate the tool into a reliable therapy risk failure. Similar fundamental work on CRISPR’s mechanisms in other tissues has already spawned clinical trials for blood disorders and cancers.

View original technical description
The research outlined in this fellowship application proposes to explore the basic mechanisms of gene editing in the retina, using CRISPR based approaches. We have already generated extremely promising preliminary data, which specifically shows how we have used CRISPR gene editing to correct a mutation in the murine Ush2a gene, which is a major cause of untreatable blindness in young people. We have also developed a novel gene therapy vector system using DNA minicircles that has the potential to revolutionize gene therapy approaches in future, because it overcomes the major size limit impediment of standard AAV vectors. Here we propose to build on these novel preliminary findings in order to gain insight into the mechanisms of endogenous gene correction and the regulation of ectopic gene expression. The experiments described herein represent three pipelines of discovery science that are needed to explore the basic mechanisms of gene editing in the retina. As a translational research group also running clinical trials, we also believe that we will be an optimal position to translate this research into new methods for treating inherited blindness in patients in future.

View the original record at the funder ↗

Researchers

Robert MacLaren (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Rescue of inherited retinal degeneration by CRISPR base editing.
Towards in vivo genome editing of post-mitotic mammalian photoreceptors for treatment of Inherited Retinal Dystrophies
Towards CRISPR/Cas9-mediated gene correction for inherited retinal disease
Optimising the therapeutic delivery of CRISPR editing tools into the retinal pigment epithelium
Development of gene editing, optogenetic therapy and robotic eye surgery in large animal models

Original classification

Discovery Award

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