Targeted creation of new mutants with compact plant architecture using CRISPR/Cas9 genome editing by an optimized genetic transformation procedure in cucurbit plants

Author:

Xin Tongxu1,Tian Haojie1,Ma Yalin12,Wang Shenhao3,Yang Li4,Li Xutong1,Zhang Mengzhuo12,Chen Chen5,Wang Huaisong1,Li Haizhen6,Xu Jieting7,Huang Sanwen2,Yang Xueyong1

Affiliation:

1. Chinese Academy of Agricultural Sciences Key Laboratory of Biology and Genetic Improvement of Horticultural Crops of Ministry of Agriculture, Sino-Dutch Joint Lab of Horticultural Genomics, Institute of Vegetables and Flowers, , Beijing 100081, China

2. Chinese Academy of Agricultural Sciences Agricultural Genomics Institute at Shenzhen, , Shenzhen 518124, China

3. Northwest A&F University College of Horticulture, , Yangling 712100, China

4. Huazhong Agricultural University Key Laboratory of Horticultural Plant Biology, Ministry of Education, College of Horticulture and Forestry Sciences, , Wuhan 430070, China

5. Hunan Academy of Agricultural Sciences Hunan Vegetable Research Institute, , Changsha 410125, China

6. Beijing Academy of Agriculture and Forestry Sciences Beijing Vegetable Research Institute, , Beijing, 100097, China

7. Wimi Biotechnology (Jiangsu) Co., Ltd , Changzhou, 213000, China

Abstract

Abstract Fruits and vegetables in the Cucurbitaceae family, such as cucumber, melon, watermelon, and squash, contribute greatly to the human diet. The widespread use of genome editing technologies has greatly accelerated gene functional characterization and crop improvement. However, most economically important cucurbit plants, including melon and squash, remain recalcitrant to standard Agrobacterium tumefaciens-mediated transformation, limiting the effective use of genome editing technology. In this study, we used an “optimal infiltration intensity” strategy to establish an efficient genetic transformation system for melon and squash. We harnessed the power of this method to target homologs of the ERECTA family of receptor kinase genes and created alleles that resulted in a compact plant architecture with shorter internodes in melon, squash, and cucumber. The optimized transformation method presented here enables stable CRISPR/Cas9-mediated mutagenesis and provides a solid foundation for functional gene manipulation in cucurbit crops.

Publisher

Oxford University Press (OUP)

Subject

Horticulture,Plant Science,Genetics,Biochemistry,Biotechnology

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