利用反义寡核苷酸诱导mdx小鼠的反向纤维。

Abbie M Fall, Russell Johnsen, Kaite Honeyman, Pat Iversen, Susan Fletcher, Stephen D Wilton
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引用次数: 66

摘要

背景:杜氏肌营养不良症是由肌营养不良蛋白基因突变导致翻译过早终止和功能蛋白缺失而引起的一种致命性遗传疾病。尽管存在原发性肌营养不良蛋白基因损伤,但免疫染色研究表明,至少50%的DMD患者、mdx小鼠和DMD犬模型具有罕见的肌营养不良蛋白阳性或“反向”纤维。精细的表位定位表明,大多数负责反向纤维的转录本排除了多个外显子,其中一个外显子包括肌营养不良蛋白突变。方法:mdx肌营养不良小鼠模型肌营养不良蛋白基因23外显子无义突变。我们已经证明反义寡核苷酸(AOs)可以诱导该外显子的去除,从而导致框架内mRNA转录物编码缩短但功能良好的肌营养不良蛋白。为了模拟与可逆纤维相关的一个外显子组合,我们通过应用一组AOs组合作为“鸡尾酒”来去除多个外显子。结果:使用AOs混合物,外显子19-25始终从肌营养不良蛋白基因转录物中排除。这与在未经治疗的营养不良小鼠肌肉中偶尔检测到的一种经选择性处理的基因转录物相对应,并被认为会产生可逆的营养不良蛋白异构体。RT-PCR、免疫组织化学和western blot分析证实了转录本和正确定位的小蛋白。结论:本工作证明了AO鸡尾酒通过多外显子跳变绕过肌营养不良蛋白突变热点的可行性。多外显子跳变在加速外显子跳变疗法治疗DMD方面可能是重要的,因此相同的AO配方可以应用于肌营养不良蛋白基因特定区域内的几种不同突变。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Induction of revertant fibres in the mdx mouse using antisense oligonucleotides.

Induction of revertant fibres in the mdx mouse using antisense oligonucleotides.

Induction of revertant fibres in the mdx mouse using antisense oligonucleotides.

Induction of revertant fibres in the mdx mouse using antisense oligonucleotides.

Background: Duchenne muscular dystrophy is a fatal genetic disorder caused by dystrophin gene mutations that result in premature termination of translation and the absence of functional protein. Despite the primary dystrophin gene lesion, immunostaining studies have shown that at least 50% of DMD patients, mdx mice and a canine model of DMD have rare dystrophin-positive or 'revertant' fibres. Fine epitope mapping has shown that the majority of transcripts responsible for revertant fibres exclude multiple exons, one of which includes the dystrophin mutation.

Methods: The mdx mouse model of muscular dystrophy has a nonsense mutation in exon 23 of the dystrophin gene. We have shown that antisense oligonucleotides (AOs) can induce the removal of this exon, resulting in an in-frame mRNA transcript encoding a shortened but functional dystrophin protein. To emulate one exonic combination associated with revertant fibres, we target multiple exons for removal by the application of a group of AOs combined as a "cocktail".

Results: Exons 19-25 were consistently excluded from the dystrophin gene transcript using a cocktail of AOs. This corresponds to an alternatively processed gene transcript that has been sporadically detected in untreated dystrophic mouse muscle, and is presumed to give rise to a revertant dystrophin isoform. The transcript and the resultant correctly localised smaller protein were confirmed by RT-PCR, immunohistochemistry and western blot analysis.

Conclusion: This work demonstrates the feasibility of AO cocktails to by-pass dystrophin mutation hotspots through multi-exon skipping. Multi-exon skipping could be important in expediting an exon skipping therapy to treat DMD, so that the same AO formulations may be applied to several different mutations within particular domains of the dystrophin gene.

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