Beijing National Laboratory for Molecular Science, CAS Key Laboratory of Analytical Chemistry for Living Biosystems, Institute of Chemistry, Chinese Academy of Sciences (ICCAS), No. 2, North first street, Zhongguancun, Beijing, 100190, China.
University of Chinese Academy of Sciences, No.19 (A) Yuquan Road, Shijingshan District, China.
Angew Chem Int Ed Engl. 2021 Apr 12;60(16):8596-8606. doi: 10.1002/anie.202005644. Epub 2020 Aug 20.
Recent innovations in genome editing have enabled the precise manipulation of the genetic information of mammalians, and benefitted the development of next-generation gene therapy. Despite these advances, several barriers to the clinical translation of genome editing remain, including the intracellular delivery of genome editing machinery, and the risk of off-target editing effect. Here, we review the recent advance of spatiotemporal delivery of CRISPR/Cas9 genome editing machinery, which is composed of programmable Cas9 nuclease and a single-guide RNA (sgRNA) using stimuli-responsive nanoparticles. We discuss the specific chemistries that have been used for controlled Cas9/sgRNA delivery and intracellular release in the presence of endogenous or external signals. These methodologies can leverage biological signals found locally within disease cells, or exogenous signals administrated with spatiotemporal control, through which an improved genome editing could be achieved. We also discuss the future in exploiting these approaches for fundamental biomedical applications and therapeutic genome editing.
近年来,基因组编辑技术的创新使哺乳动物的遗传信息能够被精确操作,从而促进了下一代基因治疗的发展。尽管取得了这些进展,但基因组编辑的临床转化仍存在一些障碍,包括基因组编辑机制的细胞内传递,以及脱靶编辑效应的风险。在这里,我们综述了近年来利用刺激响应性纳米颗粒对 CRISPR/Cas9 基因组编辑机制进行时空传递的最新进展,该机制由可编程 Cas9 核酸酶和单链向导 RNA(sgRNA)组成。我们讨论了在存在内源性或外源性信号时,用于控制 Cas9/sgRNA 传递和细胞内释放的特定化学物质。这些方法可以利用疾病细胞内局部存在的生物信号,或通过时空控制给予的外源性信号,从而实现更好的基因组编辑效果。我们还讨论了利用这些方法进行基础生物医学应用和治疗性基因组编辑的未来。