Exploiting crop genotype-specific root-soil interactions to enhance agronomic efficiency

IF 2.1 Q3 SOIL SCIENCE
E. Baggs, Jill E. Cairns, B. Mhlanga, C. Petroli, Jordan Chamberlin, Hannes Karwat, V. Kommerell, C. Thierfelder, Eric Paterson, Manje S. Gowda
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Abstract

Challenges of soil degradation and changing climate pose major threats to food security in many parts of the world, and new approaches are required to close yield and nutrition gaps through enhanced agronomic efficiency. Combined use of mineral fertilizers, organic inputs, improved germplasm and adaptation of these practices to local contexts through improved agronomy can promote efficiency whilst building stocks of soil organic matter (SOM). Within this framework, recent attention has turned to the nature of plant-soil interactions to increase response to mineral fertilizer inputs through utilisation of nutrients from SOM that are replenished through management. This utilisation has been shown in barley and maize to vary with genotype and to be related to root physiological traits associated with rhizodeposition. The identification of candidate genes associated with rhizodeposition takes this a step closer towards the possibility of breeding for sustainability. Here we discuss this potential and feasibility in the context of maize cropping systems, and explore the potential for a combined approach that optimises utilisation of SOM nutrients together with enhanced biological nitrification inhibition to further improve agronomic efficiency.
利用作物基因型特异性根土相互作用提高农艺效率
土壤退化和气候变化的挑战对世界许多地区的粮食安全构成重大威胁,需要通过提高农艺效率来缩小产量和营养差距的新方法。结合使用矿物肥料、有机投入物、改良种质以及通过改良农艺使这些做法适应当地情况,可以提高效率,同时增加土壤有机质(SOM)储量。在这一框架内,最近的注意力转向植物-土壤相互作用的性质,通过利用通过管理补充的SOM中的养分来增加对矿物肥料投入的反应。这种利用在大麦和玉米中已被证明因基因型而异,并与根沉积相关的根生理性状有关。与根沉积相关的候选基因的鉴定使这一步更接近可持续性育种的可能性。在这里,我们讨论了在玉米种植系统背景下的这种潜力和可行性,并探索了优化SOM养分利用和增强生物硝化抑制的组合方法的潜力,以进一步提高农艺效率。
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CiteScore
1.90
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