Xu Hu, Zhang Lixiao, Zhang Kang, Ran Yidong
Tianjin Genovo Biotechnology Co., Ltd., Tianjin, China.
Front Plant Sci. 2020 Oct 22;11:571138. doi: 10.3389/fpls.2020.571138. eCollection 2020.
Soybean is grown worldwide for oil and protein source as food, feed and industrial raw material for biofuel. Steady increase in soybean production in the past century mainly attributes to genetic mediation including hybridization, mutagenesis and transgenesis. However, genetic resource limitation and intricate social issues in use of transgenic technology impede soybean improvement to meet rapid increases in global demand for soybean products. New approaches in genomics and development of site-specific nucleases (SSNs) based genome editing technologies have expanded soybean genetic variations in its germplasm and have potential to make precise modification of genes controlling the important agronomic traits in an elite background. ZFNs, TALENS and CRISPR/Cas9 have been adapted in soybean improvement for targeted deletions, additions, replacements and corrections in the genome. The availability of reference genome assembly and genomic resources increases feasibility in using current genome editing technologies and their new development. This review summarizes the status of genome editing in soybean improvement and future directions in this field.
大豆作为食品、饲料和生物燃料工业原料的油和蛋白质来源,在全球范围内种植。上个世纪大豆产量的稳步增长主要归因于包括杂交、诱变和转基因在内的遗传调控。然而,遗传资源的限制以及转基因技术使用中复杂的社会问题阻碍了大豆改良,难以满足全球对大豆产品快速增长的需求。基因组学的新方法以及基于位点特异性核酸酶(SSNs)的基因组编辑技术的发展,扩大了大豆种质中的遗传变异,并有可能在优良背景下对控制重要农艺性状的基因进行精确修饰。锌指核酸酶(ZFNs)、转录激活因子样效应物核酸酶(TALENS)和规律成簇间隔短回文重复序列/CRISPR相关蛋白9(CRISPR/Cas9)已应用于大豆改良,用于基因组中的靶向缺失、添加、替换和校正。参考基因组组装和基因组资源的可用性增加了使用当前基因组编辑技术及其新发展的可行性。本综述总结了大豆改良中基因组编辑的现状以及该领域的未来方向。