Department of Biomedical Engineering, 101 Science Drive, FCIEMAS Building, Box 90281, Duke University, Durham, North Carolina 27708-0281, USA.
Center for Genomic & Computational Biology, 101 Science Drive, DUMC Box 3382, Duke University, Durham, North Carolina 27708, USA.
Nat Rev Neurol. 2017 Nov;13(11):647-661. doi: 10.1038/nrneurol.2017.126. Epub 2017 Sep 29.
For many neuromuscular disorders, including Duchenne muscular dystrophy, spinal muscular atrophy and myotonic dystrophy, the genetic causes are well known. Gene therapy holds promise for the treatment of these monogenic neuromuscular diseases, and many such therapies have made substantial strides toward clinical translation. Recently, genome engineering tools, including targeted gene editing and gene regulation, have become available to correct the underlying genetic mutations that cause these diseases. In particular, meganucleases, zinc finger nucleases, TALENs, and the CRISPR-Cas9 system have been harnessed to make targeted and specific modifications to the genome. However, for most gene therapy applications, including genome engineering, gene delivery remains the primary hurdle to clinical translation. In preclinical models, genome engineering tools have been delivered via gene-modified cells or by non-viral or viral vectors to correct a diverse array of genetic diseases. In light of the positive results of these studies, genome engineering therapies are being enthusiastically explored for several genetic neuromuscular disorders. This Review summarizes the genome engineering strategies that are currently under preclinical evaluation for the treatment of degenerative neuromuscular disorders, with a focus on the molecular tools that show the greatest potential for clinical translation of these therapies.
对于许多神经肌肉疾病,包括杜氏肌营养不良症、脊髓性肌萎缩症和强直性肌营养不良症,其遗传原因是众所周知的。基因治疗有望治疗这些单基因神经肌肉疾病,许多此类治疗方法在向临床转化方面取得了重大进展。最近,包括靶向基因编辑和基因调控在内的基因组工程工具已经可用于纠正导致这些疾病的潜在遗传突变。特别是,利用 meganucleases、锌指核酸酶、TALEN 和 CRISPR-Cas9 系统对基因组进行了靶向和特异性修饰。然而,对于大多数基因治疗应用,包括基因组工程,基因传递仍然是临床转化的主要障碍。在临床前模型中,基因组工程工具通过基因修饰细胞或非病毒或病毒载体传递,以纠正各种遗传性疾病。鉴于这些研究的积极结果,基因组工程疗法正在被积极探索用于治疗几种遗传性神经肌肉疾病。这篇综述总结了目前正在进行临床前评估的用于治疗退行性神经肌肉疾病的基因组工程策略,重点介绍了最有希望将这些疗法推向临床应用的分子工具。