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CRISPR-Cas9 介导的纳米结构基因在人原代细胞中的核转运和基因组整合。

CRISPR-Cas9-mediated nuclear transport and genomic integration of nanostructured genes in human primary cells.

机构信息

Department of Molecular and Cell Biology, University of California, Berkeley, Berkeley, CA 94720, USA.

Innovative Genomics Institute, University of California, Berkeley, Berkeley, CA 94720, USA.

出版信息

Nucleic Acids Res. 2022 Feb 22;50(3):1256-1268. doi: 10.1093/nar/gkac049.

Abstract

DNA nanostructures are a promising tool to deliver molecular payloads to cells. DNA origami structures, where long single-stranded DNA is folded into a compact nanostructure, present an attractive approach to package genes; however, effective delivery of genetic material into cell nuclei has remained a critical challenge. Here, we describe the use of DNA nanostructures encoding an intact human gene and a fluorescent protein encoding gene as compact templates for gene integration by CRISPR-mediated homology-directed repair (HDR). Our design includes CRISPR-Cas9 ribonucleoprotein binding sites on DNA nanostructures to increase shuttling into the nucleus. We demonstrate efficient shuttling and genomic integration of DNA nanostructures using transfection and electroporation. These nanostructured templates display lower toxicity and higher insertion efficiency compared to unstructured double-stranded DNA templates in human primary cells. Furthermore, our study validates virus-like particles as an efficient method of DNA nanostructure delivery, opening the possibility of delivering nanostructures in vivo to specific cell types. Together, these results provide new approaches to gene delivery with DNA nanostructures and establish their use as HDR templates, exploiting both their design features and their ability to encode genetic information. This work also opens a door to translate other DNA nanodevice functions, such as biosensing, into cell nuclei.

摘要

DNA 纳米结构是将分子有效载荷递送到细胞的一种很有前途的工具。DNA 折纸结构,其中长单链 DNA 被折叠成一个紧凑的纳米结构,是一种很有吸引力的方法来包装基因;然而,将遗传物质有效递送到细胞核仍然是一个关键挑战。在这里,我们描述了使用编码完整人类基因和荧光蛋白编码基因的 DNA 纳米结构作为 CRISPR 介导的同源定向修复 (HDR) 的基因整合的紧凑模板。我们的设计包括 DNA 纳米结构上的 CRISPR-Cas9 核糖核蛋白结合位点,以增加进入细胞核的穿梭能力。我们通过转染和电穿孔证明了 DNA 纳米结构的高效穿梭和基因组整合。与未结构化的双链 DNA 模板相比,这些纳米结构模板在人原代细胞中显示出更低的毒性和更高的插入效率。此外,我们的研究验证了病毒样颗粒作为 DNA 纳米结构递送的有效方法,为在体内将纳米结构递送到特定细胞类型开辟了可能性。总之,这些结果为 DNA 纳米结构的基因传递提供了新的方法,并确立了它们作为 HDR 模板的用途,利用它们的设计特点和编码遗传信息的能力。这项工作还为将其他 DNA 纳米器件功能(如生物传感)转化为细胞核开辟了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/882e/8860605/6d2df97eb95b/gkac049fig1.jpg

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