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Recent developments and clinical studies utilizing engineered zinc finger nuclease technology

机译:利用工程锌指核酸酶技术的最新发展和临床研究

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Efficient methods for creating targeted genetic modifications have long been sought for the investigation of gene function and the development of therapeutic modalities for various diseases, including genetic disorders. Although such modifications are possible using homologous recombination, the efficiency is extremely low. Zinc finger nucleases (ZFNs) are custom-designed artificial nucleases that make double-strand breaks at specific sequences, enabling efficient targeted genetic modifications such as corrections, additions, gene knockouts and structural variations. ZFNs are composed of two domains: (i) a DNA-binding domain comprised of zinc finger modules and (ii) the FokI nuclease domain that cleaves the DNA strand. Over 17 years after ZFNs were initially developed, a number of improvements have been made. Here, we will review the developments and future perspectives of ZFN technology. For example, ZFN activity and specificity have been significantly enhanced by modifying the DNA-binding domain and FokI cleavage domain. Advances in culture methods, such as the application of a cold shock and the use of small molecules that affect ZFN stability, have also increased ZFN activity. Furthermore, ZFN-induced mutant cells can be enriched using episomal surrogate reporters. Additionally, we discuss several ongoing clinical studies that are based on ZFN-mediated genome editing in humans. These breakthroughs have substantially facilitated the use of ZFNs in research, medicine and biotechnology.
机译:长期以来,一直在寻找有效的方法来产生有针对性的基因修饰,以研究基因功能和开发各种疾病(包括遗传疾病)的治疗方法。尽管使用同源重组可以进行这样的修饰,但是效率极低。锌指核酸酶(ZFNs)是定制设计的人工核酸酶,可在特定序列处产生双链断裂,从而能够进行有效的靶向遗传修饰,例如校正,添加,基因敲除和结构变异。 ZFN由两个域组成:(i)由锌指模块组成的DNA结合域,以及(ii)切割DNA链的FokI核酸酶域。 ZFN最初开发后的17年间,已经进行了许多改进。在这里,我们将回顾ZFN技术的发展和未来前景。例如,ZFN活性和特异性已经通过修饰DNA结合结构域和FokI切割结构域而显着增强。培养方法的进步,例如施加冷冲击和使用影响ZFN稳定性的小分子,也提高了ZFN活性。此外,可以使用游离型替代报道分子富集ZFN诱导的突变细胞。此外,我们讨论了正在进行的基于ZFN介导的人类基因组编辑的临床研究。这些突破极大地促进了ZFN在研究,医学和生物技术中的使用。

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