Research Center of Biology and Agriculture, Shunde Innovation School, School of Chemistry and Biological Engineering, University of Science and Technology Beijing (USTB), Beijing, China.
Beijing Engineering Laboratory of Main Crop Bio-Tech Breeding, Beijing International Science and Technology Cooperation Base of Bio-Tech Breeding, Zhongzhi International Institute of Agricultural Biosciences, Beijing, China.
Plant Biotechnol J. 2023 Jul;21(7):1320-1342. doi: 10.1111/pbi.13971. Epub 2023 Jan 17.
Nitrogen (N), one of the most important nutrients, limits plant growth and crop yields in sustainable agriculture system, in which phytohormones are known to play essential roles in N availability. Hence, it is not surprising that massive studies about the crosstalk between N and phytohormones have been constantly emerging. In this review, with the intellectual landscape of N and phytohormones crosstalk provided by the bibliometric analysis, we trace the research story of best-known crosstalk between N and various phytohormones over the last 20 years. Then, we discuss how N regulates various phytohormones biosynthesis and transport in plants. In reverse, we also summarize how phytohormones signallings modulate root system architecture (RSA) in response to N availability. Besides, we expand to outline how phytohormones signallings regulate uptake, transport, and assimilation of N in plants. Further, we conclude advanced biotechnology strategies, explain their application, and provide potential phytohormones-regulated N use efficiency (NUE) targets in crops. Collectively, this review provides not only a better understanding on the recent progress of crosstalk between N and phytohormones, but also targeted strategies for improvement of NUE to increase crop yields in future biotechnology breeding of crops.
氮(N)是最重要的营养物质之一,它限制了可持续农业系统中植物的生长和作物产量,而植物激素在 N 的可利用性中起着至关重要的作用。因此,大量关于 N 和植物激素之间相互作用的研究不断涌现,这并不奇怪。在这篇综述中,我们通过文献计量分析提供了 N 和植物激素相互作用的知识图谱,追溯了过去 20 年中 N 和各种植物激素之间最著名的相互作用的研究故事。然后,我们讨论了 N 如何调节植物中各种植物激素的生物合成和运输。反过来,我们还总结了植物激素信号如何调节根系结构(RSA)以响应 N 的可利用性。此外,我们还扩展了概述植物激素信号如何调节植物对 N 的吸收、运输和同化。此外,我们还总结了先进的生物技术策略,解释了它们的应用,并为作物中 N 使用效率(NUE)的潜在植物激素调控目标提供了建议。总的来说,这篇综述不仅提供了对 N 和植物激素相互作用的最新进展的更好理解,而且还为未来作物生物技术育种中提高 NUE 以增加作物产量提供了有针对性的策略。