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首页> 外文期刊>Theoretical and Applied Genetics: International Journal of Breeding Research and Cell Genetics >Tackling G x E x M interactions to close on-farm yield-gaps: creating novel pathways for crop improvement by predicting contributions of genetics and management to crop productivity
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Tackling G x E x M interactions to close on-farm yield-gaps: creating novel pathways for crop improvement by predicting contributions of genetics and management to crop productivity

机译:解决G X E X M相互作用以关闭农场产量 - 间隙:通过预测遗传和管理的贡献来创造作物改善的新途径,以作物生产力

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Key message Climate change and Genotype-by-Environment-by-Management interactions together challenge our strategies for crop improvement. Research to advance prediction methods for breeding and agronomy is opening new opportunities to tackle these challenges and overcome on-farm crop productivity yield-gaps through design of responsive crop improvement strategies. Genotype-by-Environment-by-Management (G x E x M) interactions underpin many aspects of crop productivity. An important question for crop improvement is "How can breeders and agronomists effectively explore the diverse opportunities within the high dimensionality of the complex G x E x M factorial to achieve sustainable improvements in crop productivity?" Whenever G x E x M interactions make important contributions to attainment of crop productivity, we should consider how to design crop improvement strategies that can explore the potential space of G x E x M possibilities, reveal the interesting Genotype-Management (G-M) technology opportunities for the Target Population of Environments (TPE), and enable the practical exploitation of the associated improved levels of crop productivity under on-farm conditions. Climate change adds additional layers of complexity and uncertainty to this challenge, by introducing directional changes in the environmental dimension of the G x E x M factorial. These directional changes have the potential to create further conditional changes in the contributions of the genetic and management dimensions to future crop productivity. Therefore, in the presence of G x E x M interactions and climate change, the challenge for both breeders and agronomists is to co-design new G-M technologies for a non-stationary TPE. Understanding these conditional changes in crop productivity through the relevant sciences for each dimension, Genotype, Environment, and Management, creates opportunities to predict novel G-M technology combinations suitable to achieve sustainable crop productivity and global food security targets for the likely climate change scenarios. Here we consider critical foundations required for any prediction framework that aims to move us from the current unprepared state of describing G x E x M outcomes to a future responsive state equipped to predict the crop productivity consequences of G-M technology combinations for the range of environmental conditions expected for a complex, non-stationary TPE under the influences of climate change.
机译:关键信息气候变化和基因型-环境-管理相互作用共同挑战我们的作物改良战略。推进育种和农学预测方法的研究为应对这些挑战和通过设计响应性作物改良策略克服作物产量差距开辟了新的机遇。基因型-环境-管理(G x E x M)相互作用支撑着作物生产力的许多方面。作物改良的一个重要问题是“育种家和农学家如何在复杂的G x E x M因子的高维度中有效地探索各种机会,以实现作物生产力的可持续改善?”无论何时GX-E-X M相互作用对作物生产力的实现做出重要贡献,我们都应该考虑如何设计作物改良策略,以探索GX EX X M可能的空间,揭示有趣的基因型管理(G-M)技术为目标人群(TPE)提供技术机会,并能够在农场条件下实际利用相关的作物生产力提高水平。气候变化通过在G x E x M因子的环境维度引入方向性变化,为这一挑战增加了额外的复杂性和不确定性。这些方向性变化有可能在遗传和管理维度对未来作物生产力的贡献方面产生进一步的条件性变化。因此,在存在G x E x M相互作用和气候变化的情况下,育种家和农学家面临的挑战是为非固定TPE共同设计新的G-M技术。通过各个维度、基因型、环境和管理的相关科学,了解作物生产力的这些条件变化,为预测适合于在可能的气候变化情景下实现可持续作物生产力和全球粮食安全目标的新型G-M技术组合创造了机会。在这里,我们考虑任何预测框架所需的关键基础,其目的是将我们从当前描述Gx E-X M结果的未准备状态转移到未来响应状态,该状态用于预测G-M技术组合对复杂环境条件的预期的作物生产力后果,气候变化影响下的非稳态热塑性弹性体。

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