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首页> 外文期刊>Royal Society Open Science >Taking a closer look: disentangling effects of functional diversity on ecosystem functions with a trait-based model across hierarchy and time
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Taking a closer look: disentangling effects of functional diversity on ecosystem functions with a trait-based model across hierarchy and time

机译:仔细观察:利用基于特征的模型跨越层级和时间,解开功能多样性对生态系统功能的影响

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Biodiversity and ecosystem functioning (BEF) research has progressed from the detection of relationships to elucidating their drivers and underlying mechanisms. In this context, replacing taxonomic predictors by trait-based measures of functional composition (FC)—bridging functions of species and of ecosystems—is a widely used approach. The inherent challenge of trait-based approaches is the multi-faceted, dynamic and hierarchical nature of trait influence: (i) traits may act via different facets of their distribution in a community, (ii) their influence may change over time and (iii) traits may influence processes at different levels of the natural hierarchy of organization. Here, we made use of the forest ecosystem model ‘LPJ-GUESS’ parametrized with empirical trait data, which creates output of individual performance, community assembly, stand-level states and processes. To address the three challenges, we resolved the dynamics of the top-level ecosystem function ‘annual biomass change’ hierarchically into its various component processes (growth, leaf and root turnover, recruitment and mortality) and states (stand structures, water stress) and traced the influence of different facets of FC along this hierarchy in a path analysis. We found an independent influence of functional richness, dissimilarity and identity on ecosystem states and processes and hence biomass change. Biodiversity effects were only positive during early succession and later turned negative. Unexpectedly, resource acquisition (growth, recruitment) and conservation (mortality, turnover) played an equally important role throughout the succession. These results add to a mechanistic understanding of biodiversity effects and place a caveat on simplistic approaches omitting hierarchical levels when analysing BEF relationships. They support the view that BEF relationships experience dramatic shifts over successional time that should be acknowledged in mechanistic theories.
机译:生物多样性和生态系统功能(BEF)的研究已从发现关系到阐明其驱动力和潜在机制发展。在这种情况下,通过基于特征的功能成分(FC)(物种和生态系统的桥接功能)度量来替代生物分类预测因子是一种广泛使用的方法。基于特质的方法所固有的挑战是特质影响的多面性,动态性和等级性:(i)特质可能通过其在社区中分布的不同方面起作用,(ii)特质的影响可能随时间而改变,并且(iii )特质可能会影响组织自然等级的不同层次上的过程。在这里,我们使用了根据经验特征数据参数化的森林生态系统模型“ LPJ-GUESS”,该模型创建了个人绩效,社区集会,林分状态和过程的输出。为了应对这三个挑战,我们将顶级生态系统功能“年度生物量变化”的动力学层次化地分解为其各个组成过程(生长,叶片和根的周转,补充和死亡)和状态(林分结构,水分胁迫)和在路径分析中跟踪了FC各个方面沿此层次结构的影响。我们发现功能丰富性,差异性和同一性对生态系统状态和过程以及生物量变化具有独立影响。生物多样性的影响仅在早期继承中才是积极的,而在后来则变为消极。出乎意料的是,在整个继承过程中,资源获取(增长,招聘)和保护(死亡率,周转率)起着同等重要的作用。这些结果增加了对生物多样性影响的机械理解,并警告了在分析BEF关系时省略层次结构级别的简单方法。他们支持这样的观点,即BEF关系在连续时间内会发生巨大变化,这在力学理论中应该得到承认。

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