A robot-guided needle will inject genetic therapies directly into the optic nerve of blind animals, aiming to restore sight by making surviving retinal cells light-sensitive. Inherited retinal diseases like retinitis pigmentosa and Leber hereditary optic neuropathy (LHON) are the leading cause of untreatable blindness in young people in developed countries. Existing gene therapies only work for patients with known mutations and healthy photoreceptors still intact. For those who have already lost these light-detecting cells, no treatment exists. This project tackles that gap by delivering light-sensitive proteins to the ganglion cells that remain, using a surgical robot to reach them—something manual surgery cannot do. If the technique works, optogenetic therapy could become a universal treatment for any late-stage retinal degeneration, regardless of genetic cause. It could also slow ganglion cell death in LHON and glaucoma, the world’s most common cause of irreversible blindness. The same delivery method might eventually treat other mitochondrial diseases affecting organs beyond the eye. The project also explores CRISPRa, a gene-editing tool that activates a patient’s own genes to produce light-detecting proteins, potentially restoring vision without introducing foreign DNA.
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Inherited retinal diseases, including retinitis pigmentosa and Leber congenital optic neuropathy (LHON) are the leading cause of untreatable blindness in the younger population in developed countries. They are caused by genetic mutations that lead to premature loss of cells in the retina that are important for vision. In retinitis pigmentosa, light detecting cells called photoreceptors are lost, but other retinal cells such as ganglion cells that transmit impulses to the brain remain intact. In LHON, mutations in mitochondrial genes affect the ganglion cells first, so the signal from the retina cannot be sent to the brain. Significant advances have been made in research to develop genetic treatments for these diseases, and we now have an approved gene therapy treatment, Luxturna, for one form of the disease caused by mutations in a specific gene. Gene therapy treatments aim to replace the mutated genes by healthy copies. However, for many patients, mutations are not known and for those who present late, where the photoreceptors have already been loss, gene replacement may not be possible. In these patients, optogenetic therapy is a very promising strategy where light sensitive proteins are expressed in surviving cells of the retina, including ganglion cells, to make them able to detect light and restore vision. However, efficient targeting of these cells with genetic therapies has not been achieved to date. Moreover, as the mitochondria in ganglion cells are affected in LHON, if we can deliver healthy genes to these cells, and in particular to the mitochondria, then there is potential to slow down ganglion cell degeneration and associated loss of vision. In this project we aim to develop a surgical procedure using a robot to more effectively deliver genetic therapies to retinal ganglion cells. The procedure will involve robot-assisted direct infusion into the optic nerve in an animal model, which is currently not possible to perform manually in patients. Having achieved this, we then aim to develop applications for this technique including optogenetic applications and for the treatment of optic neuropathies in future human clinical trials. Lastly, the project aims to explore the possibility of using an innovative gene editing technique called CRISPRa, to activate patients' own copies of genes and make them express light-detecting proteins in surviving retinal cells with potential to restore vision. The approaches have potential to lead to the treatment of a much broader range of blinding diseases. Optogenetic therapy could become a universal treatment and restore vision in any late stage retinal degeneration irrespective of genetic cause. Improved targeting of retinal ganglion cells could lead to potential treatments of LHON and other optic neuropathies including glaucoma, the most common cause of irreversible blindness worldwide. In addition, improved mitochondrial targeting may have implications for treatment of other inherited mitochondrial disease that lead to systemic diseases and involve organs other than the eye.
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