Recoloring tomato fruit by CRISPR/Cas9-mediated multiplex gene editing

Author:

Yang Tianxia12,Ali Muhammad12,Lin Lihao12,Li Ping3,He Hongju4,Zhu Qiang12,Sun Chuanlong12,Wu Ning12,Zhang Xiaofei12,Huang Tingting3,Li Chang-Bao5,Li Chuanyou12,Deng Lei12

Affiliation:

1. Chinese Academy of Sciences State Key Laboratory of Plant Genomics, National Center for Plant Gene Research (Beijing), Institute of Genetics and Developmental Biology, Innovation Academy for Seed Design, , Beijing 100101, China

2. University of Chinese Academy of Sciences CAS Center for Excellence in Biotic Interactions, , Beijing 100049, China

3. Qingdao Academy of Agricultural Sciences Institute of Vegetable, , Qingdao, Shandong 266100, China

4. Beijing Academy of Agriculture and Forestry Sciences Institute of Agri-food Processing and Nutrition, , Beijing 100097, China

5. Beijing Academy of Agriculture and Forestry Sciences Key Laboratory of Biology and Genetic Improvement of Horticultural Crops (North China), Ministry of Agriculture, Beijing Vegetable Research Center, , Beijing 100097, China

Abstract

Abstract Fruit color is an important horticultural trait, which greatly affects consumer preferences. In tomato, fruit color is determined by the accumulation of different pigments, such as carotenoids in the pericarp and flavonoids in the peel, along with the degradation of chlorophyll during fruit ripening. Since fruit color is a multigenic trait, it takes years to introgress all color-related genes in a single genetic background via traditional crossbreeding, and the avoidance of linkage drag during this process is difficult. Here, we proposed a rapid breeding strategy to generate tomato lines with different colored fruits from red-fruited materials by CRISPR/Cas9-mediated multiplex gene editing of three fruit color-related genes (PSY1, MYB12, and SGR1). Using this strategy, the red-fruited cultivar ‘Ailsa Craig’ has been engineered to a series of tomato genotypes with different fruit colors, including yellow, brown, pink, light-yellow, pink-brown, yellow-green, and light green. Compared with traditional crossbreeding, this strategy requires less time and can obtain transgene-free plants with different colored fruits in less than 1 year. Most importantly, it does not alter other important agronomic traits, like yield and fruit quality. Our strategy has great practical potential for tomato breeding and serves as a reference for improving multigene-controlled traits of horticultural crops.

Publisher

Oxford University Press (OUP)

Subject

Horticulture,Plant Science,Genetics,Biochemistry,Biotechnology

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