Chang Tian-Gen, Chang Shuoqi, Song Qing-Feng, Perveen Shahnaz, Zhu Xin-Guang
National Key Laboratory of Plant Molecular Genetics, CAS Center for Excellence in Molecular Plant Sciences, Shanghai Institute of Plant Physiology and Ecology, Chinese Academy of Sciences, Shanghai 200031, China.
State Key Laboratory of Hybrid Rice, HHRRC, Changsha 410125, China.
In Silico Plants. 2019;1(1). doi: 10.1093/insilicoplants/diy003. Epub 2019 Apr 25.
Recent years witnessed a stagnation in yield enhancement in major staple crops, which leads plant biologists and breeders to focus on an urgent challenge to dramatically increase crop yield to meet the growing food demand. Systems models have started to show their capacity in guiding crops improvement for greater biomass and grain yield production. Here we argue that systems models, phenomics and genomics combined are three pillars for the future breeding for high-yielding photosynthetically efficient crops (HYPEC). Briefly, systems models can be used to guide identification of breeding targets for a particular cultivar and define optimal physiological and architectural parameters for a particular crop to achieve high yield under defined environments. Phenomics can support collection of architectural, physiological, biochemical and molecular parameters in a high-throughput manner, which can be used to support both model validation and model parameterization. Genomic techniques can be used to accelerate crop breeding by enabling more efficient mapping between genotypic and phenotypic variation, and guide genome engineering or editing for model-designed traits. In this paper, we elaborate on these roles and how they can work synergistically to support future HYPEC breeding.
近年来,主要粮食作物的产量增长陷入停滞,这促使植物生物学家和育种家将重点放在一项紧迫的挑战上,即大幅提高作物产量以满足不断增长的粮食需求。系统模型已开始展现出其在指导作物改良以提高生物量和谷物产量方面的能力。在此,我们认为系统模型、表型组学和基因组学相结合是未来培育高产光合高效作物(HYPEC)的三大支柱。简而言之,系统模型可用于指导特定品种育种目标的确定,并为特定作物定义最佳生理和形态参数,以便在特定环境下实现高产。表型组学能够以高通量方式支持形态、生理、生化和分子参数的收集,这些参数可用于支持模型验证和模型参数化。基因组技术可通过实现基因型和表型变异之间更高效的映射来加速作物育种,并指导针对模型设计性状的基因组工程或编辑。在本文中,我们详细阐述了这些作用以及它们如何协同工作以支持未来的HYPEC育种。