缺磷通过上调CeIPT5抑制木麻黄反式玉米蛋白核苷积累,促进木麻黄根伸长和吸磷效率。

IF 3.5 2区 农林科学 Q1 FORESTRY
Lijuan Jiang, Hua Yang, Yunshuang Du, Zhaoliang Zheng, Shanshan Ding, Xinyan Zhang, Xingliang Yao, Gongfu Ye, Jun Su, Jian Li
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引用次数: 0

摘要

作为海岸保护的重要树种,木麻黄(Casuarina equisetifolia)的更新屏障受到磷(P)缺乏的影响。然而,杉木对缺磷的反应尚不清楚。本研究比较了对磷缺乏敏感的“赤狐219”和对磷不敏感的“赤狐397”两种杉木品种的表型,发现缺磷显著提高了赤狐219的根系生长、磷浓度和磷吸收效率(PAE),而对赤狐397则无显著影响。我们还分析了不同磷条件下这些品种的转录组和代谢组,结果表明,缺磷使Chihu219的反式玉米蛋白核苷(tZR)水平受到高度抑制,而Chihu397则没有。此外,外源tZR抑制了根磷浓度和PAE,提高了磷利用效率(PUE)。我们还鉴定了CeIPT5(异戊烯基转移酶5)是tZR生物合成的关键调控基因,发现缺磷对其表达的诱导作用在Chihu219中高于Chihu397。我们还发现,与载体对照相比,过表达CeIPT5在不敏感雌栎系中降低了tZR浓度,增加了根P浓度。综上所述,缺磷至少通过激活tZR积累调控基因CeIPT5,显著降低了对磷缺乏不敏感的雌栎的tZR积累,从而促进了根系伸长和磷浓度。本研究不仅为提高木本植物PAE提供了遗传基础,而且为优化根系结构,提高养分利用效率,促进林业可持续发展奠定了理论基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Phosphorus deficiency suppresses the trans-zeatin riboside accumulation by up-regulating CeIPT5, promoting root elongation and phosphorus absorption efficiency of Casuarina equisetifolia.

Phosphorus (P) deficiency is critical to the renewal barrier of she-oak (Casuarina equisetifolia), an important tree species used for coastal protection. However, the response of she-oak to P deficiency remains unclear. In this study, we compared the phenotypes of two she-oak cultivars, the P deficiency-sensitive 'Chihu219' and the insensitive 'Chihu397', and found that P deficiency significantly increased root growth, P concentration and P absorption efficiency (PAE) in Chihu219, but not in Chihu397. We also analyzed the transcriptome and metabolome of these cultivars under different P conditions and showed that trans-zeatin riboside (tZR) levels were highly suppressed by P deficiency in Chihu219, but not in Chihu397. Furthermore, exogenous tZR suppressed both root P concentration and PAE while promoting phosphorus use efficiency (PUE). We also identified CeIPT5 (isopentenyltransferase 5) as a key regulatory gene of tZR biosynthesis and found that its expression was more highly induced by P deficiency in Chihu219 than in Chihu397. We also showed that overexpression of CeIPT5 in insensitive she-oak lines reduced tZR concentration and increased root P concentration compared to the vector control. Taken together, P deficiency can greatly reduce tZR accumulation in P deficiency-insensitive she-oak at least by activating the tZR accumulation regulatory gene, CeIPT5, thereby promoting root elongation and P concentration. This study not only provides a genetic basis for enhancing PAE in woody plants, but also establishes a theoretical basis for optimizing root structure and improving nutrient utilization efficiency, thereby promoting sustainable forestry development.

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来源期刊
Tree physiology
Tree physiology 农林科学-林学
CiteScore
7.10
自引率
7.50%
发文量
133
审稿时长
1 months
期刊介绍: Tree Physiology promotes research in a framework of hierarchically organized systems, measuring insight by the ability to link adjacent layers: thus, investigated tree physiology phenomenon should seek mechanistic explanation in finer-scale phenomena as well as seek significance in larger scale phenomena (Passioura 1979). A phenomenon not linked downscale is merely descriptive; an observation not linked upscale, might be trivial. Physiologists often refer qualitatively to processes at finer or coarser scale than the scale of their observation, and studies formally directed at three, or even two adjacent scales are rare. To emphasize the importance of relating mechanisms to coarser scale function, Tree Physiology will highlight papers doing so particularly well as feature papers.
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