Unraveling Nitrogen Uptake and Metabolism: Gene Families, Expression Dynamics, and Functional Insights in Aspen (Populus tremula).

IF 3.7 2区 农林科学 Q1 FORESTRY
Yupeng Zhang, Shruti Choudhary, Anna Renström, Mikko Luomaranta, Maxime Chantreau, Verena Fleig, Ioana Gaboreanu, Carolin Grones, Ove Nilsson, Kathryn M Robinson, Hannele Tuominen
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Abstract

The influence of nitrogen on wood formation is well established. To gain insight into the underlying molecular mechanism, we first identified genes in fourteen gene families that are involved in nitrogen uptake and metabolism in European aspen (Populus tremula L.) genome annotation. Gene expression data from a de novo RNA sequencing (RNA-seq) analysis and data available from the AspWood database (plantgenie.org) provided putative candidate genes for the uptake of nitrate, ammonium and amino acids from the xylem sap as well as their further assimilation in the secondary xylem tissues of the stem. For a population-wide analysis of the nitrogen-related genes, we utilized RNA-seq data from the cambial region of the stems of 5-year-old aspen trees, representing 99 natural aspen accessions, and compared the expression of the nitrogen-related genes to stem diameter. Novel regulatory interactions were identified in expression quantitative loci and co-expression network analyses in these data. The expression of certain nitrate and amino acid transporters correlated negatively with stem diameter, suggesting that excessive nitrogen retrieval from the xylem sap suppresses radial growth of the stem. The expression of a glutamine synthetase correlated with the expression of these transporters, a link further supported by increased plant growth in transgenic glutamine synthetase overexpressing trees. This study provides insight into the genetic basis of nitrogen uptake and assimilation and its connection to wood formation, providing interesting targets for improving nitrogen use efficiency and growth of aspen trees.

揭示氮吸收和代谢:基因家族,表达动力学,和功能的见解在白杨(杨树)。
氮对木材形成的影响已得到证实。为了深入了解潜在的分子机制,我们首先鉴定了欧洲白杨(Populus tremula L.)基因组注释中涉及氮吸收和代谢的14个基因家族的基因。来自从头RNA测序(RNA-seq)分析的基因表达数据和来自AspWood数据库(plantgenie.org)的数据提供了从木质部汁液中吸收硝酸盐、铵和氨基酸以及它们在茎次生木质部组织中进一步同化的假定候选基因。为了在全种群范围内分析氮相关基因,我们利用来自5年生白杨树干形成层区的RNA-seq数据,代表99个天然白杨品种,并比较了氮相关基因的表达与茎径的关系。在这些数据的表达定量位点和共表达网络分析中发现了新的调控相互作用。某些硝酸盐和氨基酸转运体的表达与茎粗呈负相关,表明木质部汁液中过多的氮回收抑制了茎的径向生长。谷氨酰胺合成酶的表达与这些转运体的表达相关,这一联系在转基因谷氨酰胺合成酶过表达的树木中得到了进一步的支持。该研究揭示了氮素吸收和同化的遗传基础及其与木材形成的联系,为提高白杨树氮素利用效率和生长提供了有趣的靶点。
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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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