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基因组编辑技术在人类疾病治疗中的应用

英文原题:Applications of genome editing technologies in the treatment of human diseases.

PubMed 2026/06/15(内容时间) Gene Ther Q1 · IF 5.9(JCR 2025)

研究概要

基因组编辑已从实验室中靶向DNA操作的能力,发展为一种具有临床相关性的策略,用于纠正、沉默或调控与人类疾病相关的基因。

中文摘要

基因组编辑已从实验室中靶向DNA操作的能力,发展为纠正、沉默或调控与人类疾病相关基因的临床相关策略。在本综述中,我们综合了主要可编程平台的机制、能力和局限——锌指核酸酶(ZFNs)、转录激活因子样效应物核酸酶(TALENs)和CRISPR-Cas系统——并强调碱基编辑器、先导编辑器和表观遗传编辑器如何将可实现的结果范围从依赖双链断裂的修复扩展到精确的核苷酸替换、小插入/缺失和转录调控。我们比较了基因组编辑货物形式,包括质粒DNA、病毒载体DNA、mRNA、guide RNA和核糖核蛋白复合物,以及用于运输它们的递送方式,包括AAV、腺病毒和疱疹病毒载体、脂质纳米颗粒(LNPs)、电穿孔和病毒样颗粒。随后,我们整合了这些技术所支持的关键生物医学应用,涵盖内源性基因标记、高通量功能变异筛选、分子记录以及遗传忠实疾病模型的生成。在肿瘤学、呼吸系统、血液系统、心血管、代谢、神经退行性、病毒、眼部和免疫疾病中,基因组编辑正在推进离体和体内干预,包括工程化细胞免疫疗法、用于血红蛋白病的造血干细胞和祖细胞编辑,以及新兴的针对脂质和凝血靶点的肝脏导向项目。最后,我们讨论广泛临床实施的优先事项:提高编辑保真度和PAM灵活性,增强在非分裂细胞中的性能,实现对难以到达器官(例如肺和中枢神经系统)的组织选择性递送,以及解决制造可扩展性、长期监测和公平的全球可及性。

展开英文摘要原文

Genome editing has progressed from a laboratory capability for targeted DNA manipulation to a clinically relevant strategy for correcting, silencing, or regulating genes implicated in human disease. In this Review, we synthesize the mechanisms, capabilities, and constraints of the principal programmable platforms-zinc-finger nucleases (ZFNs), transcription activator-like effector nucleases (TALENs), and CRISPR-Cas systems-and highlight how base editors, prime editors, and epigenetic editors expand the range of achievable outcomes beyond double-strand break-dependent repair to precise nucleotide substitutions, small insertions/deletions, and transcriptional modulation. We compare genome-editing cargo formats, including plasmid DNA, viral-vector DNA, mRNA, guide RNA, and ribonucleoprotein complexes, together with the delivery modalities used to transport them, including AAV, adenoviral and herpesviral vectors, lipid nanoparticles (LNPs), electroporation, and virus-like particles. We then consolidate key biomedical applications enabled by these technologies, spanning endogenous gene tagging, high-throughput functional variant screening, molecular recording, and the generation of genetically faithful disease models. Across oncology, respiratory, hematologic, cardiovascular, metabolic, neurodegenerative, viral, ocular, and immune disorders, genome editing is advancing both ex vivo and in vivo interventions, including engineered cellular immunotherapies, hematopoietic stem and progenitor cell editing for hemoglobinopathies, and emerging liver-directed programs for lipid and coagulation targets. Finally, we discuss priorities for broad clinical implementation: improving editing fidelity and PAM flexibility, increasing performance in non-dividing cells, enabling tissue-selective delivery to difficult organs (for example, lung and central nervous system), and addressing manufacturing scalability, long-term monitoring, and equitable global access.

论文信息

作者
Alshorman J、Mehran MJ、Miyanda Tembo K、Mostafavi N、Bolideei M、Wang Y
第一作者单位
Department of Orthopaedics, The Second Affiliated Hospital of Hainan Medical University, Haikou, China.China
通讯作者单位
Department of Orthopaedics, The Second Affiliated Hospital of Hainan Medical University, Haikou, China. wangyp0312@126.com.China
文献类型
综述
期刊
Gene therapy2026 Jun 15
原文标识
PubMed 42298089 · DOI 10.1038/s41434-026-00627-z