Functional correction in mouse models of muscular dystrophy using exon-skipping tricyclo-DNA oligomers

被引:235
作者
Goyenvalle, Aurelie [1 ]
Griffith, Graziella [1 ]
Babbs, Arran [2 ]
El Andaloussi, Samir [3 ,4 ]
Ezzat, Kariem [4 ]
Avril, Aurelie [1 ]
Dugovic, Branislav [5 ]
Chaussenot, Remi [6 ,7 ]
Ferry, Arnaud [8 ]
Voit, Thomas [8 ]
Amthor, Helge [1 ]
Buehr, Claudia [9 ]
Schuerch, Stefan [9 ]
Wood, Matthew J. A. [4 ]
Davies, Kay E. [2 ]
Vaillend, Cyrille [6 ,7 ]
Leumann, Christian [9 ]
Garcia, Luis [1 ]
机构
[1] Univ Versailles St Quentin, INSERM U1179, LIA BAHN CSM, Montigny Le Bretonneux, France
[2] Univ Oxford, MRC Funct Genom Unit, Oxford, England
[3] Karolinska Inst, Dept Lab Med, Huddinge, Sweden
[4] Univ Oxford, Department Physiol Anat & Genet, Oxford, England
[5] SYNTHENA AG, Bern, Switzerland
[6] Univ Paris 11, Ctr Neurosci Paris Sud, UMR8195, Orsay, France
[7] CNRS, Orsay, France
[8] Univ Paris 06, Inst Myol, INSERM U974, CNRS FRE 3217, Paris, France
[9] Univ Bern, Dept Chem & Biochem, Bern, Switzerland
基金
英国医学研究理事会;
关键词
MDX MOUSE; 2'-O-METHYL PHOSPHOROTHIOATE; DEFICIENT MICE; CARDIOMYOPATHY; OLIGONUCLEOTIDES; IMPAIRMENT; EXPRESSION; UTROPHIN; SKELETAL; GENE;
D O I
10.1038/nm.3765
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Antisense oligonucleotides (AONs) hold promise for therapeutic correction of many genetic diseases via exon skipping, and the first AON-based drugs have entered clinical trials for neuromuscular disorders(1,2). However, despite advances in AON chemistry and design, systemic use of AONs is limited because of poor tissue uptake, and recent clinical reports confirm that sufficient therapeutic efficacy has not yet been achieved. Here we present a new class of AONs made of tricyclo-DNA (tcDNA), which displays unique pharmacological properties and unprecedented uptake by many tissues after systemic administration. We demonstrate these properties in two mouse models of Duchenne muscular dystrophy (DMD), a neurogenetic disease typically caused by frame-shifting deletions or nonsense mutations in the gene encoding dystrophin(3,4) and characterized by progressive muscle weakness, cardiomyopathy, respiratory failure(5) and neurocognitive impairment(6). Although current naked AONs do not enter the heart or cross the blood-brain barrier to any substantial extent, we show that systemic delivery of tcDNA-AONs promotes a high degree of rescue of dystrophin expression in skeletal muscles, the heart and, to a lesser extent, the brain. Our results demonstrate for the first time a physiological improvement of cardio-respiratory functions and a correction of behavioral features in DMD model mice. This makes tcDNA-AON chemistry particularly attractive as a potential future therapy for patients with DMD and other neuromuscular disorders or with other diseases that are eligible for exon-skipping approaches requiring whole-body treatment.
引用
收藏
页码:270 / +
页数:9
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