Kumar Krishan, Yadava Pranjal, Gupta Mamta, Choudhary Mukesh, Jha Abhishek Kumar, Wani Shabir Hussain, Dar Zahoor Ahmed, Kumar Bhupender, Rakshit Sujay
Delhi Unit Office, ICAR - Indian Institute of Maize Research, Pusa Campus, New Delhi, 110012, India.
ICAR - Indian Agricultural Research Institute, Pusa Campus, New Delhi, 110012, India.
Mol Biol Rep. 2022 Dec;49(12):12091-12107. doi: 10.1007/s11033-022-07679-5. Epub 2022 Jun 25.
Conventional agricultural practices rely heavily on chemical fertilizers to boost production. Among the fertilizers, phosphatic fertilizers are copiously used to ameliorate low-phosphate availability in the soil. However, phosphorus-use efficiency (PUE) for major cereals, including maize, is less than 30%; resulting in more than half of the applied phosphate being lost to the environment. Rock phosphate reserves are finite and predicted to exhaust in near future with the current rate of consumption. Thus, the dependence of modern agriculture on phosphatic fertilizers poses major food security and sustainability challenges. Strategies to optimize and improve PUE, like genetic interventions to develop high PUE cultivars, could have a major impact in this area. Here, we present the current understanding and recent advances in the biological phenomenon of phosphate uptake, translocation, and adaptive responses of plants under phosphate deficiency, with special reference to maize. Maize is one of the most important cereal crops that is cultivated globally under diverse agro-climatic conditions. It is an industrial, feed and food crop with multifarious uses and a fast-rising global demand and consumption. The interesting aspects of diversity in the root system architecture traits, the interplay between signaling pathways contributing to PUE, and an in-depth discussion on promising candidate genes for improving PUE in maize are elaborated.
传统农业做法严重依赖化肥来提高产量。在这些肥料中,磷肥被大量用于改善土壤中低磷有效性的状况。然而,包括玉米在内的主要谷物的磷利用效率(PUE)低于30%;这导致超过一半的施用磷肥流失到环境中。磷矿储量有限,预计以目前的消耗速度在不久的将来将会耗尽。因此,现代农业对磷肥的依赖构成了重大的粮食安全和可持续性挑战。优化和提高磷利用效率的策略,如通过基因干预培育高磷利用效率品种,可能会在这一领域产生重大影响。在这里,我们介绍了目前对植物在缺磷情况下磷吸收、转运和适应性反应的生物学现象的理解以及最新进展,特别以玉米为例。玉米是全球在多种农业气候条件下种植的最重要的谷类作物之一。它是一种具有多种用途的工业、饲料和粮食作物,全球需求和消费量正在迅速上升。本文阐述了玉米根系结构性状的多样性、有助于磷利用效率的信号通路之间的相互作用等有趣方面,并深入讨论了提高玉米磷利用效率的有前景的候选基因。