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bioRxiv · 10.1101/521419

Homology-directed repair using transient CRISPR/Cpf1-geminiviral replicon in tomato

Abstract

Genome editing via the homology-directed repair (HDR) pathway in somatic plant cells is very inefficient compared to error-prone repair by nonhomologous end joining (NHEJ). Here, we increased HDR-based genome editing efficiency approximately 3-fold compared to a Cas9-based single-replicon system via the use of de novo multi-replicon systems equipped with CRISPR/LbCpf1 in tomato and obtained replicon-free but stable HDR alleles. The efficiency of CRISPR/LbCpf1-based HDR was significantly modulated by physical culture conditions such as temperature and light. Ten days of incubation at 31{degrees}C under a light/dark cycle after Agrobacterium-mediated transformation resulted in the best performance among the tested conditions. Furthermore, we developed our single-replicon system into a multi-replicon system that effectively increased HDR efficiency. Although this approach is still challenging, we showed the feasibility of HDR-based genome editing of a salt-tolerant SlHKT1;2 allele without genomic integration of antibiotic markers or any phenotypic selection. Self-pollinated offspring plants carrying the HKT1;2 HDR allele showed stable inheritance and germination tolerance in the presence of 100 mM NaCl. Our work may pave the way for transgene-free editing of alleles of interest in asexually as well as sexually reproducing plants.

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BibTeXRIS

Vu, T. V., Sivankalyani, V., Kim, E.-J., Tran, M. T., Kim, J., Sung, Y. W., Doan, D. T. H., Kim, J.-Y.. 2019-01-16. Homology-directed repair using transient CRISPR/Cpf1-geminiviral replicon in tomato. https://doi.org/10.1101/521419

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