Lyzenga Wendy J, Pozniak Curtis J, Kagale Sateesh
Aquatic and Crop Resource Development, National Research Council Canada, Saskatoon, SK, Canada.
Global Institute for Food Security, University of Saskatchewan, Saskatoon, SK, Canada.
Plant Biotechnol J. 2021 Apr;19(4):660-670. doi: 10.1111/pbi.13576. Epub 2021 Mar 25.
Human population growth has increased the demand for food crops, animal feed, biofuel and biomaterials, all the while climate change is impacting environmental growth conditions. There is an urgent need to develop crop varieties which tolerate adverse growth conditions while requiring fewer inputs. Plant breeding is critical to global food security and, while it has benefited from modern technologies, it remains constrained by a lack of valuable genetic diversity, linkage drag, and an effective way to combine multiple favourable alleles for complex traits. CRISPR/Cas technology has transformed genome editing across biological systems and promises to transform agriculture with its high precision, ease of design, multiplexing ability and low cost. We discuss the integration of CRISPR/Cas-based gene editing into crop breeding to advance domestication and refine inbred crop varieties for various applications and growth environments. We highlight the use of CRISPR/Cas-based gene editing to fix desirable allelic variants, generate novel alleles, break deleterious genetic linkages, support pre-breeding and for introgression of favourable loci into elite lines.
人口增长增加了对粮食作物、动物饲料、生物燃料和生物材料的需求,与此同时,气候变化正在影响环境生长条件。迫切需要培育出能耐受不利生长条件且投入较少的作物品种。植物育种对全球粮食安全至关重要,虽然它受益于现代技术,但仍然受到缺乏有价值的遗传多样性、连锁累赘以及将多个有利等位基因组合用于复杂性状的有效方法的限制。CRISPR/Cas技术已经改变了生物系统中的基因组编辑,并有望以其高精度、易于设计、多重化能力和低成本改变农业。我们讨论了基于CRISPR/Cas的基因编辑在作物育种中的整合,以推进驯化并改良自交作物品种,使其适用于各种应用和生长环境。我们强调了基于CRISPR/Cas的基因编辑在固定理想等位基因变体、产生新等位基因、打破有害遗传连锁、支持预育种以及将有利基因座导入优良品系方面的应用。