The Impact of Nitrogen and Phosphorus Interaction on Growth, Nutrient Absorption, and Signal Regulation in Woody Plants.

IF 3.6 3区 生物学 Q1 BIOLOGY
Xiaan Tang, Yi Zhang, Panpan Meng, Yingke Yuan, Changhao Li, Xiaotan Zhi, Chunyan Wang
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Abstract

This article methodically reveals how, in woody plants (poplar), the interaction between N and P coordinates root structure and nutrient absorption through a complex hormone signaling network. This study bridges a significant gap in our knowledge of nutrient interaction networks. The results demonstrate that NO3- significantly enhances the gene expression and enzymatic activity of organic acid synthases (MDH, PEPC) and APs. Furthermore, it synergizes with IAA/ABA signals to refine root structure, enhancing the surface area for P absorption. In low Pi availability environments, NO3- further promotes P recycling by simultaneously boosting the levels of Pi transport proteins (notably, the PHO family), facilitating myo-inositol phosphate metabolism (via IMP3/ITPK1-mediated PP-InsPs degradation), and augmenting IAA/SA signals. Pi induces the activity of N assimilation enzymes (GS/GOGAT/GDH), facilitating nitrogen metabolism. However, in the absence of N, it leads to a metabolic imbalance characterized by high enzymatic activity but low efficiency. Alternatively, adequate N availability allows Pi to improve root robustness and N assimilation efficiency, mediated by IAA/GA accumulation and ABA signaling (e.g., SNRK2/ABF). We propose the existence of an intricate network in poplar, orchestrated by transcriptional cascades, metabolic regulation, and hormonal synergism. Key modules such as SPX-PHR, NLA, HHO2, and MYB59 are likely central to this network's function. These findings offer a foundational framework for the development of molecular breeding and precise fertilization strategies, enhancing the efficient use of N and P in forestry.

氮磷互作对木本植物生长、养分吸收及信号调控的影响
本文系统地揭示了木本植物(杨树)中氮磷之间的相互作用是如何通过复杂的激素信号网络协调根系结构和养分吸收的。这项研究填补了我们对营养相互作用网络知识的重大空白。结果表明,NO3-显著提高了有机酸合成酶(MDH、PEPC)和APs的基因表达和酶活性。此外,它与IAA/ABA信号协同作用,改善根系结构,增加吸收磷的表面积。在低磷可利用性环境下,NO3-通过同时提高磷转运蛋白(特别是PHO家族)水平、促进肌醇磷酸代谢(通过IMP3/ itpk1介导的PP-InsPs降解)和增强IAA/SA信号,进一步促进磷的再循环。Pi诱导氮同化酶(GS/GOGAT/GDH)活性,促进氮代谢。然而,在缺乏N的情况下,会导致酶活性高但效率低的代谢失衡。另外,充足的氮素可用性可以通过IAA/GA积累和ABA信号(如SNRK2/ABF)介导,提高根的稳健性和氮同化效率。我们提出在杨树中存在一个复杂的网络,由转录级联、代谢调节和激素协同作用精心策划。SPX-PHR、NLA、HHO2和MYB59等关键模块可能是该网络功能的核心。这些发现为分子育种和精确施肥策略的发展提供了基础框架,提高了林业氮磷的有效利用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biology-Basel
Biology-Basel Biological Science-Biological Science
CiteScore
5.70
自引率
4.80%
发文量
1618
审稿时长
11 weeks
期刊介绍: Biology (ISSN 2079-7737) is an international, peer-reviewed, quick-refereeing open access journal of Biological Science published by MDPI online. It publishes reviews, research papers and communications in all areas of biology and at the interface of related disciplines. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. Electronic files regarding the full details of the experimental procedure, if unable to be published in a normal way, can be deposited as supplementary material.
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