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C:N:P stoichiometry of Artemisia species and close relatives across northern China: unravelling effects of climate, soil and taxonomy

机译:中国北部蒿类及近亲的C:N:P化学计量:气候,土壤和分类学的影响

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摘要

Carbon (C), nitrogen (N) and phosphorus (P) stoichiometries play critical roles in the function and structure of ecosystems by affecting important ecological processes. Yet, most studies to date have concentrated on foliar stoichiometry of phylogenetically distantly related species. Here, we hypothesized that (i) plant stoichiometry of closely related species still shows biogeographic patterns because of the geographic patterns of abiotic environment at the regional scale and (ii) even related species still differ strongly in their stoichiometry owing to inherent differences in the absorption and retention of different elements. To test the hypotheses, we analysed the C:N:P stoichiometry of 48 species of Artemisia and its close relatives from 65 sites across northern China. Elemental concentrations and stoichiometry had no correlation with latitude or longitude but showed clear altitudinal trends. Climate had a weak effect on plant elemental concentrations and stoichiometry but not on C concentration. Soil chemistry had significant effects on C and P concentrations, C:P and N:P. Nested models revealed that species identity accounted for more than 30% of the total variance of all elemental concentrations and stoichiometric ratios, and different species responded differently to environmental gradients. Synthesis. Our results highlight that even closely related species can vary importantly in plant elemental stoichiometry. This suggests that ecologists and global change researchers should be careful not to simply take a species' stoichiometry as representative of an entire taxonomic group for upscaling of plant chemical responses to climatic and edaphic variation in our fast changing world. Our results highlight that even closely related species can vary importantly in plant element stoichiometry. This suggests that ecologists and global change researchers should be careful not to simply take a species' stoichiometry as representative of an entire taxonomic group for upscaling of plant chemical responses to climatic and edaphic variation in our fast changing world.
机译:碳(C),氮(N)和磷(P)的化学计量学通过影响重要的生态过程在生态系统的功能和结构中发挥关键作用。然而,迄今为止,大多数研究都集中在系统发育远缘相关物种的叶化学计量上。在此,我们假设:(i)由于区域范围内非生物环境的地理格局,密切相关物种的植物化学计量仍然显示出生物地理模式;(ii)由于吸收的固有差异,甚至相关物种的化学计量也存在很大差异和保留不同元素。为了检验假设,我们分析了中国北方65个地区的48种蒿及其近亲的C:N:P化学计量。元素浓度和化学计量与纬度或经度无关,但显示出明显的海拔趋势。气候对植物元素浓度和化学计量的影响较弱,但对碳浓度的影响较小。土壤化学性质对C和P浓度,C:P和N:P有显着影响。嵌套模型表明,物种同一性占所有元素浓度和化学计量比的总方差的30%以上,并且不同物种对环境梯度的响应不同。合成。我们的研究结果表明,即使密切相关的物种在植物元素化学计量上也可能发生重要变化。这表明,生态学家和全球变化研究人员应谨慎行事,不要简单地将一种物种的化学计量作为整个生物分类学的代表,以提高我们在瞬息万变的世界中对化学反应和气候变化的化学反应的规模。我们的研究结果表明,即使密切相关的物种在植物元素化学计量方面也可能发生重要变化。这表明,生态学家和全球变化研究人员应谨慎行事,不要简单地将一种物种的化学计量作为整个生物分类学的代表,以提高我们在瞬息万变的世界中对化学反应和气候变化的化学反应的规模。

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