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Overcoming Phosphorus Deficiency in West African Pearl Millet and Sorghum Production Systems: Promising Options for Crop Improvement

机译:克服西非珍珠粟和高粱生产系统中的磷缺乏症:有望改善作物的选择

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摘要

West Africa (WA) is among the most food insecure regions. Rapid human population growth and stagnating crop yields greatly contribute to this fact. Poor soil fertility, especially low plant available phosphorus (P) is constraining food production in the region. P-fertilizer use in WA is among the lowest in the world due to inaccessibility and high prices, often unaffordable to resource-poor subsistence farmers. This article provides an overview of soil P-deficiency in WA and opportunities to overcome it by exploiting sorghum and pearl millet genetic diversity. The topic is examined from the perspectives of plant breeding, soil science, plant physiology, plant nutrition, and agronomy, thereby referring to recent results obtained in a joint interdisciplinary research project, and reported literature. Specific objectives are to summarize: (1) The global problem of P scarcity and how it will affect WA farmers; (2) Soil P dynamics in WA soils; (3) Plant responses to P deficiency; (4) Opportunities to breed for improved crop adaptation to P-limited conditions; (5) Challenges and trade-offs for improving sorghum and pearl millet adaptation to low-P conditions in WA; and (6) Systems approaches to address soil P-deficiency in WA. Sorghum and pearl millet in WA exhibit highly significant genetic variation for P-uptake efficiency, P-utilization efficiency, and grain yield under P-limited conditions indicating the possibility of breeding P-efficient varieties. Direct selection under P-limited conditions was more efficient than indirect selection under high-P conditions. Combining P-uptake and P-utilization efficiency is recommendable for WA to avoid further soil mining. Genomic regions responsible for P-uptake, P-utilization efficiency, and grain yield under low-P have been identified in WA sorghum and pearl millet, and marker-assisted selection could be possible once these genomic regions are validated. Developing P-efficient genotypes may not, however, be a sustainable solution in itself in the long-term without replenishing the P removed from the system in harvested produce. We therefore propose the use of integrated soil fertility management and systems-oriented management such as enhanced crop-tree-livestock integration in combination with P-use-efficiency-improved varieties. Recycling P from animal bones, human excreta and urine are also possible approaches toward a partially closed and efficient P cycle in WA.
机译:西非(WA)是粮食最不安全的地区之一。人口的快速增长和作物单产的停滞极大地促进了这一事实。土壤肥力差,特别是植物有效磷含量低,限制了该地区的粮食生产。由于交通不便和价格高昂,西澳大利亚州的P肥料使用量是世界上最低的,而资源贫乏的农民通常买不起。本文概述了西澳大利亚州土壤中的磷缺乏症,并介绍了通过开发高粱和珍珠粟的遗传多样性克服土壤磷缺乏的机会。从植物育种,土壤科学,植物生理学,植物营养学和农学的角度研究了该主题,从而参考了在一个跨学科联合研究项目中获得的最新成果,并报道了文献。具体目标概述如下:(1)全球缺磷问题及其对西澳农民的影响; (2)西澳土壤中的磷动态变化; (3)植物对磷缺乏的反应; (4)繁殖的机会,以提高作物对磷限制条件的适应性; (5)在西澳大利亚州提高高粱和珍珠粟对低磷条件的适应性的挑战和权衡; (6)解决西澳土壤磷缺乏的系统方法。在限制磷条件下,华盛顿州的高粱和珍珠粟在磷吸收效率,磷利用效率和谷物产量方面表现出极显着的遗传变异,这表明有可能育种磷高效品种。在P限制条件下的直接选择比在高P条件下的间接选择更有效。对于西澳大利亚州,建议将磷吸收和磷利用效率结合起来,以避免进一步的土壤开采。在西澳大利亚州高粱和珍珠粟中已经确定了负责低磷条件下磷吸收,磷利用效率和谷物产量的基因组区域,并且一旦这些基因组区域得到验证,就可以进行标记辅助选择。但是,从长远来看,开发有效磷基因型本身可能不是可持续的解决方案,而无需补充收获产品中从系统中去除的磷。因此,我们建议使用土壤肥力综合管理和面向系统的管理,例如结合P-使用效率改良的品种来增强农作物-牲畜一体化。从动物骨骼,人体排泄物和尿液中回收磷也是实现WA中部分封闭和有效P循环的可行方法。

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