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  4. Gene Editing Preserves Visual Functions in a Mouse Model of Retinal Degeneration
 
research article

Gene Editing Preserves Visual Functions in a Mouse Model of Retinal Degeneration

Vagni, Paola  
•
Perlini, Laura E.
•
Chenais, Naig A. L.
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September 10, 2019
Frontiers In Neuroscience

Inherited retinal dystrophies (IRDs) are a large and heterogeneous group of degenerative diseases caused by mutations in various genes. Given the favorable anatomical and immunological characteristics of the eye, gene therapy holds great potential for their treatment. Our goal is to validate the preservation of visual functions by viral-free homology directed repair (HDR) in an autosomal recessive loss of function mutation. We used a tailored gene editing system based on clustered regularly interspaced short palindromic repeats (CRISPR)/CRISPR-associated protein 9 (Cas9) to prevent retinal photoreceptor death in the retinal degeneration 10 (Rd10) mouse model of retinitis pigmentosa. We tested the gene editing tool in vitro and then used in vivo subretinal electroporation to deliver it to one of the retinas of mouse pups at different stages of photoreceptor differentiation. Three months after gene editing, the treated eye exhibited a higher visual acuity compared to the untreated eye. Moreover, we observed preservation of light-evoked responses both in explanted retinas and in the visual cortex of treated animals. Our study validates a CRISPR/Cas9-based therapy as a valuable new approach for the treatment of retinitis pigmentosa caused by autosomal recessive loss-of-function point mutations.

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Type
research article
DOI
10.3389/fnins.2019.00945
Web of Science ID

WOS:000485070000001

Author(s)
Vagni, Paola  
Perlini, Laura E.
Chenais, Naig A. L.
Marchetti, Tommaso
Parrini, Martina
Contestabile, Andrea
Cancedda, Laura
Ghezzi, Diego  
Date Issued

2019-09-10

Published in
Frontiers In Neuroscience
Volume

13

Start page

945

Subjects

Neurosciences

•

Neurosciences & Neurology

•

vision

•

gene editing

•

retinal degeneration

•

in vivo electroporation

•

photoreceptors

•

in-utero electroporation

•

retinitis-pigmentosa

•

therapy progress

•

beta-subunit

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time-course

•

rd10 mouse

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aav

•

vivo

•

transplantation

•

repair

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LNE  
Available on Infoscience
September 23, 2019
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/161449
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