Genetic and geographic determinants of nitrogen isotope discrimination in black cottonwood (Populus trichocarpa).

IF 3.7 2区 农林科学 Q1 FORESTRY
Yi Hu, Robert D Guy, Jaroslav Klápště, Xuyang Lu, Raju Y Soolanayakanahally
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Abstract

Genotypic variation in nitrogen-use traits remains largely unexplored in trees on a range-wide scale, either in field studies or under controlled experiments. Understanding natural variation in nitrogen-related traits and their relationships to climate is essential for studying local adaptation and advancing breeding efforts. In this study, we took advantage of a large collection of black cottonwood genotypes covering a major portion of the species' natural range, to study the genetic variation in nitrogen isotope discrimination (Δ15N). Nearly 350 unrelated wild genotypes were grown under steady-state hydroponic conditions and analyzed for growth and Δ15N-related traits. Differences in biomass, root-to-shoot ratio, whole-plant and organ-level nitrogen percentages, and Δ15N were found between genotypes and populations. Leaf nitrogen percentage and root-to-shoot ratio were significantly correlated to geographic and climatic variables, implying natural selection for lower leaf nitrogen and lower root-to-shoot ratio in regions with longer growing seasons and a lower risk of drought. Root Δ15N and (less so) leaf Δ15N correlated with geographic and climatic variables, and measurements from either tissue provide a reasonable indication of plant nitrogen uptake efficiency. A genome-wide association study was conducted on leaf and root Δ15N, leaf nitrogen percentage and root-to-shoot ratio. The analysis identified a candidate gene encoding glutaminyl-tRNA synthetase linked to root Δ15N, but found no significant associations with genes involved in nitrate transport or assimilation. However, multiple associations were detected for root-to-shoot ratio and leaf nitrogen percentage, both of which affect isotope-based calculations of root nitrogen efflux/influx and leaf nitrogen assimilation activity.

黑棉杨氮同位素鉴别的遗传和地理决定因素。
在广泛的范围内,无论是在实地研究中还是在对照实验中,树木氮素利用性状的基因型变异在很大程度上仍未被探索。了解氮素相关性状的自然变异及其与气候的关系,对于研究本地适应性和推进育种工作至关重要。在本研究中,我们利用覆盖该物种主要自然分布范围的大量黑棉基因型,研究了氮同位素识别的遗传变异(Δ15N)。在稳态水培条件下培养了近350个不相关的野生基因型,并对其生长和Δ15N-related性状进行了分析。生物量、根冠比、全株氮含量和器官氮含量以及Δ15N在基因型和群体之间存在差异。叶片氮含量和根冠比与地理和气候变量呈显著相关,表明在生长季节较长、干旱风险较低的地区,低叶片氮含量和低根冠比是自然选择。根Δ15N和叶Δ15N与地理和气候变量相关,来自任一组织的测量提供了植物氮吸收效率的合理指示。对叶片和根系Δ15N、叶片含氮率和根冠比进行了全基因组关联研究。分析确定了一个与根Δ15N相关的编码谷氨酰胺- trna合成酶的候选基因,但没有发现与硝酸盐运输或同化相关的基因有显著关联。然而,研究发现根冠比和叶片氮含量之间存在多重关联,两者都影响基于同位素的根氮外排/内流计算和叶片氮同化活性。
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
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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