4.7 Article

Precise exogenous insertion and sequence replacements in poplar by simultaneous HDR overexpression and NHEJ suppression using CRISPR-Cas9

Journal

HORTICULTURE RESEARCH
Volume 9, Issue -, Pages -

Publisher

OXFORD UNIV PRESS INC
DOI: 10.1093/hr/uhac154

Keywords

-

Funding

  1. National Key Program on Transgenic Research [2018ZX08020002]
  2. National Natural Science Foundation of China [31971682, 31570650, 2045210646]

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This study demonstrates that simultaneous inhibition of NHEJ and overexpression of HDR enhancer factors can greatly improve the efficiency of gene knock-in in plants. This approach may have potential applications in not only plants but also mammals for enhancing CRISPR-mediated gene modification efficiency.
CRISPR-mediated genome editing has become a powerful tool for the genetic modification of biological traits. However, developing an efficient, site-specific, gene knock-in system based on homology-directed DNA repair (HDR) remains a significant challenge in plants, especially in woody species like poplar. Here, we show that simultaneous inhibition of non-homologous end joining (NHEJ) recombination cofactor XRCC4 and overexpression of HDR enhancer factors CtIP and MRE11 can improve HDR efficiency for gene knock-in. Using this approach, the BleoR gene was integrated onto the 3 ' end of the MKK2 MAP kinase gene to generate a BleoR-MKK2 fusion protein. Based on fully edited nucleotides evaluated by TaqMan real-time PCR, the HDR-mediated knock-in efficiency was up to 48% when using XRCC4 silencing incorporated with a combination of CtIP and MRE11 overexpression compared with no HDR enhancement or NHEJ silencing. Furthermore, this combination of HDR enhancer overexpression and NHEJ repression also increased genome targeting efficiency and gave 7-fold fewer CRISPR-induced insertions and deletions (InDels), resulting in no functional effects on MKK2-based salt stress responses in poplar. Therefore, this approach may be useful not only in poplar and plants or crops but also in mammals for improving CRISPR-mediated gene knock-in efficiency.

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