DNA-free CRISPR-Cas9 gene editing of wild tetraploid tomato Solanum peruvianum using protoplast regeneration

Author:

Lin Choun-Sea1ORCID,Hsu Chen-Tran1,Yuan Yu-Hsuan1,Zheng Po-Xing12ORCID,Wu Fu-Hui1,Cheng Qiao-Wei1,Wu Yu-Lin12,Wu Ting-Li12,Lin Steven3ORCID,Yue Jin-Jun4ORCID,Cheng Ying-Huey5,Lin Shu-I6ORCID,Shih Ming-Che1ORCID,Sheen Jen7ORCID,Lin Yao-Cheng12ORCID

Affiliation:

1. Agricultural Biotechnology Research Center, Academia Sinica, Taipei 115, Taiwan

2. Biotechnology Research Center in Southern Taiwan, Academia Sinica, Tainan 711, Taiwan

3. Institute of Biochemistry, Academia Sinica, Taipei 115, Taiwan

4. Research Institute of Subtropical Forestry, Chinese Academy of Forestry, Hangzhou 311, China

5. Plant Pathology Division, Taiwan Agricultural Research Institute, Taichung 413, Taiwan

6. Department of Horticulture and Landscape Architecture, National Taiwan University, Taipei 106, Taiwan

7. Department of Molecular Biology and Center for Computational and Integrative Biology, Massachusetts General Hospital, and Department of Genetics, Harvard Medical School, Boston, Massachusetts 02114, USA

Abstract

Abstract Wild tomatoes (Solanum peruvianum) are important genomic resources for tomato research and breeding. Development of a foreign DNA-free clustered regularly interspaced short palindromic repeat (CRISPR)-Cas delivery system has potential to mitigate public concern about genetically modified organisms. Here, we established a DNA-free CRISPR-Cas9 genome editing system based on an optimized protoplast regeneration protocol of S. peruvianum, an important resource for tomato introgression breeding. We generated mutants for genes involved in small interfering RNAs biogenesis, RNA-DEPENDENT RNA POLYMERASE 6 (SpRDR6), and SUPPRESSOR OF GENE SILENCING 3 (SpSGS3); pathogen-related peptide precursors, PATHOGENESIS-RELATED PROTEIN-1 (SpPR-1) and PROSYSTEMIN (SpProSys); and fungal resistance (MILDEW RESISTANT LOCUS O, SpMlo1) using diploid or tetraploid protoplasts derived from in vitro-grown shoots. The ploidy level of these regenerants was not affected by PEG-Ca2+-mediated transfection, CRISPR reagents, or the target genes. By karyotyping and whole genome sequencing analysis, we confirmed that CRISPR-Cas9 editing did not introduce chromosomal changes or unintended genome editing sites. All mutated genes in both diploid and tetraploid regenerants were heritable in the next generation. spsgs3 null T0 regenerants and sprdr6 null T1 progeny had wiry, sterile phenotypes in both diploid and tetraploid lines. The sterility of the spsgs3 null mutant was partially rescued, and fruits were obtained by grafting to wild-type (WT) stock and pollination with WT pollen. The resulting seeds contained the mutated alleles. Tomato yellow leaf curl virus proliferated at higher levels in spsgs3 and sprdr6 mutants than in the WT. Therefore, this protoplast regeneration technique should greatly facilitate tomato polyploidization and enable the use of CRISPR-Cas for S. peruvianum domestication and tomato breeding.

Funder

Innovative Translational Agricultural Research Program

Academia Sinica Institutional

Ministry of Science and Technology

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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