类器官- AAV基因治疗中枢神经系统疾病临床前发展的未来。

IF 4.6 3区 医学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Vivienne M Kaiser, Anai Gonzalez-Cordero
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引用次数: 0

摘要

我们对遗传疾病和腺相关病毒的理解的进步,促使人们对aav介导的基因治疗领域,特别是中枢神经系统的遗传疾病,包括视网膜疾病,产生了极大的兴奋。尽管取得了重大进展,例如Luxturna®和Zolgensma®等疗法的批准,但仍有大量疗法处于临床前或早期临床阶段,许多疗法未能进入后期阶段。虽然使用动物模型来测试AAV治疗的安全性和递送途径有效性是必要的,但人类和动物模型之间的组织结构和生理差异限制了许多中枢神经系统疾病的精确疾病建模和基因治疗的发展。随着FDA推动非动物替代模型,研究人员越来越多地转向基于人类的模型,包括干细胞衍生的类器官,它可以更准确地代表人类细胞微环境和生态位。因此,本综述探讨了脑和视网膜类器官作为疾病临床前模型的优势和局限性,主要关注它们在鉴定新型AAV衣壳、细胞特异性启动子方面的应用,以及它们在最近的临床前AAV基因治疗研究中的作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Organoids - the future of pre-clinical development of AAV gene therapy for CNS disorders.

Advancements in our understanding of genetic disease and adeno-associated virus has prompted great excitement into the field of AAV-mediated gene therapy, particularly for genetic diseases of the central nervous system, including retinal disorders. Despite significant progress, exemplified by the approval of therapies such as Luxturna® and Zolgensma®, a substantial number of therapies remain in pre-clinical or early clinical stages, with many failing to advance to later phases. Whilst the use of animal models to test safety and delivery route efficacy of AAV treatments is imperative, differences in tissue structure and physiology between humans and animal models has restricted precise disease modelling and gene therapy development for many CNS disorders. Alongside the FDA push for non-animal alternative models, researchers are increasingly turning to human-based models, including stem cell-derived organoids, which can offer a more accurate representation of human cellular microenvironments and niches. As such, this review explores the advantages and limitations of brain and retinal organoids as pre-clinical models of disease, with a primary focus on their utility in identifying novel AAV capsids, cell-specific promoters, and their role in recent pre-clinical AAV gene therapy studies.

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来源期刊
Gene Therapy
Gene Therapy 医学-生化与分子生物学
CiteScore
9.70
自引率
2.00%
发文量
67
审稿时长
4-8 weeks
期刊介绍: Gene Therapy covers both the research and clinical applications of novel therapeutic techniques based on a genetic component. Over the last few decades, significant advances in technologies ranging from identifying novel genetic targets that cause disease through to clinical studies, which show therapeutic benefit, have elevated this multidisciplinary field to the forefront of modern medicine.
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