Xin Tongxu, Tian Haojie, Ma Yalin, Wang Shenhao, Yang Li, Li Xutong, Zhang Mengzhuo, Chen Chen, Wang Huaisong, Li Haizhen, Xu Jieting, Huang Sanwen, Yang Xueyong
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, Chinese Academy of Agricultural Sciences, Beijing 100081.
Agricultural Genomics Institute at Shenzhen, Chinese Academy of Agricultural Sciences, Shenzhen 518124, China.
Hortic Res. 2022 Jan 20;9. doi: 10.1093/hr/uhab086.
Fruits and vegetables in the Cucurbitaceae family contribute greatly to the human diet, for example, cucumber, melon, watermelon and squash. The widespread use of genome editing technologies has greatly accelerated the functional characterization of genes as well as crop improvement. However, most economically important cucurbit plants, including melon and squash, remain recalcitrant to standard Agrobacterium tumefaciens-mediated transformation, which limits the effective use of genome editing technology. In this study, we describe the "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 resulting in a compact plant architecture with shorter internodes in melon, squash and cucumber. The optimized transformation method presented here allows stable CRISPR/Cas9-mediated mutagenesis and will lay a solid foundation for functional gene manipulation in cucurbit crops.
葫芦科的水果和蔬菜对人类饮食贡献巨大,例如黄瓜、甜瓜、西瓜和南瓜。基因组编辑技术的广泛应用极大地加速了基因的功能表征以及作物改良。然而,包括甜瓜和南瓜在内的大多数具有重要经济价值的葫芦科植物,对标准的根癌农杆菌介导的转化仍然具有抗性,这限制了基因组编辑技术的有效应用。在本研究中,我们描述了“最佳浸润强度”策略,以建立甜瓜和南瓜的高效遗传转化系统。我们利用这种方法靶向受体激酶基因ERECTA家族的同源物,并创造了等位基因,从而在甜瓜、南瓜和黄瓜中产生了节间较短的紧凑植株结构。这里介绍的优化转化方法允许稳定的CRISPR/Cas9介导的诱变,并将为葫芦科作物的功能基因操作奠定坚实基础。