基因组编辑技术的应用

Jianwei Zhu, Wenjing Ma, Ziwei Huang, Qiuyu Zhang, Xiaoying Xie, Xiaoming Yang, Hualin Sun
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引用次数: 3

摘要

基因组编辑技术是目前在特定位置准确操作基因组的最有效工具。锌指核酸酶(ZFNs)、转录激活子样效应核酸酶(TALENs)和聚集的规则间隔短回文重复序列相关的Cas9(CRISPR/Cas9)系统被用于基因组编辑技术。用ZFN和TALEN进行的编辑都由与核酸内切酶融合的DNA结合结构域组成。这样做是为了通过诱导DNA双链断裂(DSB)实现广泛的遗传修饰,该双链断裂刺激在特定基因组位置的错误倾向的非同源末端连接(NHEJ)或同源定向修复(HDR)。与ZFN和TALEN不同,CRISPR/Cas系统是一种RNA介导的特异性识别过程,在sgRNA与靶DNA序列结合后引入DSB。ZFN、TALEN和CRISPR/Cas9系统通过这些修复机制精确地修饰了这些基因组特征,并已成功用于操纵人类细胞中的基因组。这些基因组编辑工具可用于研究基因功能,探索疾病的遗传机制,发现新的治疗靶点,并开发新的疾病模型。此外,这些基因组编辑技术在基因治疗中具有巨大的潜力。在此,我们回顾了基因组编辑技术在遗传病[杜氏肌营养不良症(DMD)、血友病]、癌症[嵌合抗原受体T细胞免疫疗法(CAR-T)技术]、病毒感染[人类免疫缺陷病毒(HIV)、乙型肝炎病毒(HBV)]、生物农业和微生物研究和治疗中的应用的最新进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The application of genome editing technology
Genome editing technology is currently the most effective tool for accurately manipulating genomes at specific locations. Zinc-finger nucleases (ZFNs), transcription activator-like effector nucleases (TALENs), and the clustered regularly interspaced short palindromic repeats associated Cas9 (CRISPR/Cas9) system were used genome editing technologies. Both editing done with ZFNs and TALENs consist of DNA-binding domains which are fused to endonucleases. This is done to enable a broad range of genetic modifications by inducing DNA double-strand breaks (DSB) that stimulate the error-prone Non-Homologous End-Joining (NHEJ) or a homology-directed repair (HDR) at specific genomic locations. Different to ZFNs and TALENs, the CRISPR/Cas system is an RNA-mediated specific recognition process which DSB been introduced after the sgRNA binds to the targeted DNA sequence. The ZFNs, TALENs and CRISPR/Cas9 systems modify these genomic characteristics precisely through these repair mechanisms, and have been successfully used to manipulate the genome in human cells. These genome editing tools can be used to investigate gene function, to explore the genetic mechanisms of a disease, to discover new therapeutic targets, and to develop new disease models. Moreover, these genome editing technologies have a great potential in gene therapy. Here, we review the latest advances in the application of genome editing technology for the study and treatment of genetic diseases [Duchenne muscular dystrophy (DMD), hemophilia], cancers [chimeric antigen receptor T-cell immunotherapy (CAR-T) technology], viral infections [human immunodeficiency virus (HIV), hepatitis B virus (HBV)], bio-agricultures, and microorganisms.
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