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肌肉特异性基因编辑改善了1型强直性肌营养不良小鼠模型中的分子和表型缺陷。

Muscle-specific gene editing improves molecular and phenotypic defects in a mouse model of myotonic dystrophy type 1.

作者信息

Izzo Mariapaola, Battistini Jonathan, Golini Elisabetta, Voellenkle Christine, Provenzano Claudia, Orsini Tiziana, Strimpakos Georgios, Scavizzi Ferdinando, Raspa Marcello, Baci Denisa, Frolova Svetlana, Tastsoglou Spyros, Zaccagnini Germana, Garcia-Manteiga Jose Manuel, Gourdon Genevieve, Mandillo Silvia, Cardinali Beatrice, Martelli Fabio, Falcone Germana

机构信息

Institute of Biochemistry and Cell Biology, CNR, Rome, Italy.

Department of Molecular Medicine, Sapienza University of Rome, Rome, Italy.

出版信息

Clin Transl Med. 2025 Feb;15(2):e70227. doi: 10.1002/ctm2.70227.

Abstract

BACKGROUND

Myotonic dystrophy type 1 (DM1) is a genetic multisystemic disease, characterised by pleiotropic symptoms that exhibit notable variability in severity, nature and age of onset. The genetic cause of DM1 is the expansion of unstable CTG-repeats in the 3' untranslated region (UTR) of the DMPK gene, resulting in the accumulation of toxic CUG-transcripts that sequester RNA-binding proteins and form nuclear foci in DM1 affected tissues and, consequently, alter various cellular processes. Therapeutic gene editing for treatment of monogenic diseases is a powerful technology that could in principle remove definitively the disease-causing genetic defect. The precision and efficiency of the molecular mechanisms are still under investigation in view of a possible use in clinical practice.

METHODS

Here, we describe the application of the clustered regularly interspaced short palindromic repeats (CRISPR)/CRISPR-associated protein 9 (Cas9) strategy to remove the CTG-expansion in the DMPK gene in a mouse model carrying the human transgene from a DM1 patient. To optimise the editing efficiency in vivo, we identified new tools that allowed to improve the expression levels and the activity of the CRISPR/Cas9 machinery. Newly designed guide RNA pairs were tested in DM1-patient derived cells before in vivo application. Edited cells were analysed to assess the occurrence of off-target and the accuracy of on-target genomic events. Gene editing-dependent and -independent mechanisms leading to decreased accumulation of the mutated DMPK transcripts were also evaluated.

RESULTS AND CONCLUSION

Systemic delivery of CRISPR/Cas9 components in DM1 mice, through myotropic adeno-associated viral vectors, led to significant improvement of molecular alterations in the heart and skeletal muscle. Importantly, a persistent increase of body weight, improvement of muscle strength and body composition parameters were observed in treated animals. Accurate evaluation of CRISPR/Cas9-mediated-phenotypic recovery in vivo is a crucial preclinical step for the development of a gene therapy for DM1 patients.

KEY POINTS

In vivo application of a therapeutic gene editing strategy for permanent deletion of the pathogenetic CTG-repeat amplification in the DMPK gene that causes myotonic dystrophy type 1. Following treatment, diseased mice show a significant improvement of both molecular and phenotypic defects.

摘要

背景

1型强直性肌营养不良症(DM1)是一种遗传性多系统疾病,其特征是多效性症状在严重程度、性质和发病年龄上表现出显著差异。DM1的遗传病因是DMPK基因3'非翻译区(UTR)中不稳定的CTG重复序列扩增,导致有毒的CUG转录本积累,这些转录本隔离RNA结合蛋白并在DM1受累组织中形成核灶,从而改变各种细胞过程。用于治疗单基因疾病的治疗性基因编辑是一项强大的技术,原则上可以彻底消除致病基因缺陷。鉴于其可能用于临床实践,分子机制的精确性和效率仍在研究中。

方法

在此,我们描述了成簇规律间隔短回文重复序列(CRISPR)/CRISPR相关蛋白9(Cas9)策略在携带来自DM1患者人类转基因的小鼠模型中用于去除DMPK基因中CTG扩增的应用。为了优化体内编辑效率,我们鉴定了新的工具,这些工具能够提高CRISPR/Cas9机制的表达水平和活性。新设计的引导RNA对在体内应用之前先在源自DM1患者的细胞中进行测试。对编辑后的细胞进行分析,以评估脱靶的发生情况和靶基因组事件的准确性。还评估了导致突变的DMPK转录本积累减少的基因编辑依赖性和非依赖性机制。

结果与结论

通过嗜肌性腺相关病毒载体将CRISPR/Cas9组件全身递送至DM1小鼠体内,导致心脏和骨骼肌中的分子改变有显著改善。重要的是,在接受治疗的动物中观察到体重持续增加、肌肉力量和身体成分参数得到改善。准确评估CRISPR/Cas9介导的体内表型恢复是为DM1患者开发基因治疗的关键临床前步骤。

关键点

体内应用治疗性基因编辑策略以永久删除导致1型强直性肌营养不良症的DMPK基因中的致病性CTG重复扩增。治疗后,患病小鼠的分子和表型缺陷均有显著改善。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/186e/11830570/134d38e09c84/CTM2-15-e70227-g004.jpg

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