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CRISPR/Cas 核糖核蛋白的包装和去壳用于通过病毒和非病毒细胞外纳米颗粒进行高效基因编辑。

Packaging and Uncoating of CRISPR/Cas Ribonucleoproteins for Efficient Gene Editing with Viral and Non-Viral Extracellular Nanoparticles.

机构信息

Cell and Gene Technology Group, Center for Precision Genome Editing and Genetic Technologies for Biomedicine, Institute of Gene Biology RAS, 119334 Moscow, Russia.

Phystech School of Biological and Medical Physics, Moscow Institute of Physics and Technology, 141701 Moscow, Russia.

出版信息

Viruses. 2023 Mar 6;15(3):690. doi: 10.3390/v15030690.

Abstract

Rapid progress in gene editing based on clustered regularly interspaced short palindromic repeats/CRISPR-associated protein (CRISPR/Cas) has revolutionized functional genomic studies and genetic disease correction. While numerous gene editing applications have been easily adapted by experimental science, the clinical utility of CRISPR/Cas remains very limited due to difficulty in delivery to primary cells and possible off-target effects. The use of CRISPR in the form of a ribonucleoprotein (RNP) complex substantially reduces the time of DNA exposure to the effector nuclease and minimizes its off-target activity. The traditional electroporation and lipofection methods lack the cell-type specificity of RNP delivery, can be toxic for cells, and are less efficient when compared to nanoparticle transporters. This review focuses on CRISPR/Cas RNP packaging and delivery using retro/lentiviral particles and exosomes. First, we briefly describe the natural stages of viral and exosomal particle formation, release and entry into the target cells. This helps us understand the mechanisms of CRISPR/Cas RNP packaging and uncoating utilized by the current delivery systems, which we discuss afterward. Much attention is given to the exosomes released during viral particle production that can be passively loaded with RNPs as well as the mechanisms necessary for particle fusion, RNP release, and transportation inside the target cells. Collectively, together with specific packaging mechanisms, all these factors can substantially influence the editing efficiency of the system. Finally, we discuss ways to improve CRISPR/Cas RNP delivery using extracellular nanoparticles.

摘要

基于成簇规律间隔短回文重复序列/CRISPR 相关蛋白(CRISPR/Cas)的基因编辑技术取得了快速进展,彻底改变了功能基因组学研究和遗传疾病的矫正。虽然许多基因编辑应用已经被实验科学轻松地采用,但由于难以递送到原代细胞和可能的脱靶效应,CRISPR/Cas 的临床应用仍然非常有限。以核糖核蛋白(RNP)复合物形式使用 CRISPR 可大大减少 DNA 暴露于效应核酸酶的时间,并最小化其脱靶活性。传统的电穿孔和脂质体转染方法缺乏 RNP 递送至靶细胞的细胞类型特异性,对细胞可能有毒性,并且与纳米颗粒转运体相比效率较低。本综述重点介绍使用逆转录病毒/慢病毒颗粒和外泌体进行 CRISPR/Cas RNP 包装和递送。首先,我们简要描述了病毒和外泌体颗粒形成、释放和进入靶细胞的自然阶段。这有助于我们理解当前递送系统中使用的 CRISPR/Cas RNP 包装和脱壳机制,我们随后将对此进行讨论。我们特别关注在病毒颗粒产生过程中释放的可以被动加载 RNP 的外泌体,以及颗粒融合、RNP 释放和在靶细胞内运输所需的机制。总之,所有这些因素,连同特定的包装机制,都可以极大地影响系统的编辑效率。最后,我们讨论了使用细胞外纳米颗粒来改善 CRISPR/Cas RNP 递送的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3ddd/10056905/16e4099e086a/viruses-15-00690-g001.jpg

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