Chen Xiao, Zhong Zhaohui, Tang Xu, Yang Suxin, Zhang Yaohua, Wang Shoudong, Liu Yiqian, Zhang Ye, Zheng Xuelian, Zhang Yong, Feng Xianzhong
Key Laboratory of Soybean Molecular Design Breeding, National Key Laboratory of Black Soils Conservation and Utilization, Northeast Institute of Geography and Agroecology, Chinese Academy of Sciences, Changchun 130102, China.
Department of Biotechnology, School of Life Sciences and Technology, Center for Informational Biology, University of Electronic Science and Technology of China, Chengdu 610054, China.
Hortic Res. 2024 Jun 7;11(8):uhae160. doi: 10.1093/hr/uhae160. eCollection 2024 Aug.
Although CRISPR-Cas9 technology has been rapidly applied in soybean genetic improvement, it is difficult to achieve the targeted editing of the specific loci in the soybean complex genome due to the limitations of the classical protospacer adjacent motif (PAM). Here, we developed a PAM-less genome editing system mediated by SpRY in soybean. By performing targeted editing of representative agronomic trait targets in soybean and evaluating the results, we demonstrate that the SpRY protein can achieve efficient targeted mutagenesis at relaxed PAM sites in soybean. Furthermore, the SpRY-based cytosine base editor SpRY-hA3A and the adenine base editor SpRY-ABE8e both can accurately induce C-to-T and A-to-G conversion in soybean, respectively. Thus, our data illustrate that the SpRY toolbox can edit the soybean genomic sequence in a PAM-free manner, breaking restrictive PAM barriers in the soybean genome editing technology system. More importantly, our research enriches soybean genome editing tools, which has important practical application value for precise editing and molecular design in soybean breeding.
尽管CRISPR-Cas9技术已在大豆遗传改良中迅速应用,但由于经典的原间隔序列临近基序(PAM)的局限性,在大豆复杂基因组中实现特定位点的靶向编辑仍很困难。在此,我们开发了一种由SpRY介导的无PAM基因组编辑系统用于大豆。通过对大豆中有代表性的农艺性状靶点进行靶向编辑并评估结果,我们证明SpRY蛋白能够在大豆中宽松的PAM位点实现高效的靶向诱变。此外,基于SpRY的胞嘧啶碱基编辑器SpRY-hA3A和腺嘌呤碱基编辑器SpRY-ABE8e分别能在大豆中准确诱导C到T和A到G的转换。因此,我们的数据表明SpRY工具盒能够以无PAM的方式编辑大豆基因组序列,打破了大豆基因组编辑技术系统中限制性的PAM障碍。更重要的是,我们的研究丰富了大豆基因组编辑工具,这对大豆育种中的精确编辑和分子设计具有重要的实际应用价值。