Efficient precise integration of large DNA sequences with 3'-overhang dsDNA donors using CRISPR/Cas9.

Han, Wenjie; Li, Zhigang; Guo, Yijun; He, Kaining; Li, Wenqing; Xu, Caoling; Ge, Lishuang; He, Miao et al. · Proc Natl Acad Sci U S A · 2023

basic_science · Level V

Where this comes from

Abstract

CRISPR/Cas9 genome-editing tools have tremendously boosted our capability of manipulating the eukaryotic genomes in biomedical research and innovative biotechnologies. However, the current approaches that allow precise integration of gene-sized large DNA fragments generally suffer from low efficiency and high cost. Herein, we developed a versatile and efficient approach, termed LOCK (<u>L</u>ong dsDNA with 3'-<u>O</u>verhangs mediated <u>C</u>RISPR <u>K</u>nock-in), by utilizing specially designed 3'-overhang double-stranded DNA (odsDNA) donors harboring 50-nt homology arm. The length of the 3'-overhangs of odsDNA is specified by the five consecutive phosphorothioate modifications. Compared with existing methods, LOCK allows highly efficient targeted insertion of kilobase-sized DNA fragments into the mammalian genomes with low cost and low off-target effects, yielding >fivefold higher knock-in frequencies than conventional homologous recombination-based approaches. This newly designed LOCK approach based on homology-directed repair is a powerful tool suitable for gene-sized fragment integration that is urgently needed for genetic engineering, gene therapies, and synthetic biology.

Medical subject headings