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Global biodiversity stoichiometry and ecosystem function responses to human-induced C-N-P imbalances

机译:全球生物多样性化学计量和生态系统功能对人为诱发的C-N-P不平衡的反应

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摘要

Global change analyses usually consider biodiversity as a global asset that needs to be preserved. Biodiversity is frequently analysed mainly as a response variable affected by diverse environmental drivers. However, recent studies highlight that gradients of biodiversity are associated with gradual changes in the distribution of key dominant functional groups characterized by distinctive traits and stoichiometry, which in turn often define the rates of ecosystem processes and nutrient cycling. Moreover, pervasive links have been reported between biodiversity, food web structure, ecosystem function and species stoichiometry. Here we review current global stoichiometric gradients and how future distributional shifts in key functional groups may in turn influence basic ecosystem functions (production, nutrient cycling, decomposition) and therefore could exert a feed-back effect on stoichiometric gradients. The C-N-P stoichiometry of most primary producers (phytoplankton, algae, plants) has been linked to functional trait continua (i.e. to major axes of phenotypic variation observed in inter-specific analyses of multiple traits). In contrast, the C-N-P stoichiometry of higher-level consumers remains less precisely quantified in many taxonomic groups. We show that significant links are observed between trait continua across trophic levels. In spite of recent advances, the future reciprocal feedbacks between key functional groups, biodiversity and ecosystem functions remain largely uncertain. The reported evidence, however, highlights the key role of stoichiometric traits and suggests the need of a progressive shift towards an ecosystemic and stoichiometric perspective in global biodiversity analyses.
机译:全球变化分析通常将生物多样性视为需要保护的全球资产。经常将生物多样性主要分析为受各种环境驱动因素影响的响应变量。但是,最近的研究强调,生物多样性的梯度与关键性显性功能组的分布的逐渐变化有关,这些显性功能组的特征在于独特的特征和化学计量关系,而反过来又常常定义了生态系统进程和养分循环的速率。此外,据报道生物多样性,食物网结构,生态系统功能和物种化学计量之间存在普遍联系。在这里,我们回顾了当前的全球化学计量梯度,以及未来关键功​​能组的分布变化将如何影响基本的生态系统功能(生产,养分循环,分解),因此可能对化学计量梯度产生反馈作用。大多数主要生产者(浮游植物,藻类,植物)的C-N-P化学计量已与功能性状连续性(即与在多个性状的种间分析中观察到的表型变异的主轴)相关联。相比之下,在许多分类组中,高级消费者的C-N-P化学计量仍然不够精确。我们表明,在营养水平上的性状连续性之间观察到重要的联系。尽管有最近的进展,但主要职能群体,生物多样性和生态系统功能之间未来的相互反馈仍然不确定。然而,所报告的证据强调了化学计量特性的关键作用,并提出了在全球生物多样性分析中逐步向生态学和化学计量观点转变的需要。

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