Department of Plant Biology, Michigan State University, East Lansing, Michigan, USA.
Program in Ecology, Evolution, and Behavior, Michigan State University, East Lansing, Michigan, USA.
Ecology. 2023 Feb;104(2):e3910. doi: 10.1002/ecy.3910. Epub 2022 Dec 21.
Relationships between biodiversity and ecosystem functioning depend on the processes structuring community assembly. However, predicting biodiversity-ecosystem functioning (BEF) relationships based on community assembly remains challenging because assembly outcomes are often contingent on history and the consequences of history for ecosystem functions are poorly understood. In a grassland restoration experiment, we isolated the role of history for the relationships between plant biodiversity and multiple ecosystem functions by initiating assembly in three different years, while controlling for all other aspects of community assembly. We found that two aspects of assembly history-establishment year and succession-altered species and trait community trajectories, which in turn altered net primary productivity, decomposition rates, and floral resources. Moreover, history altered BEF relationships (which ranged from positive to negative), both within and across functions, by modifying the causal pathways linking species identity, traits, diversity, and ecosystem functions. Our results show that the interplay of deterministic succession and environmental stochasticity during establishment mediate historical contingencies that cause variation in biodiversity and ecosystem functions, even under otherwise identical assembly conditions. An explicit attention to history is needed to understand why biodiversity-ecosystem function relationships vary in natural ecosystems: a critical question at the intersection of fundamental theory and applications to environmental change biology and ecosystem restoration.
生物多样性与生态系统功能之间的关系取决于群落组装的过程。然而,基于群落组装来预测生物多样性-生态系统功能(BEF)关系仍然具有挑战性,因为组装结果通常取决于历史,而历史对生态系统功能的影响则知之甚少。在一项草原恢复实验中,我们通过在三年的不同年份启动组装,同时控制群落组装的所有其他方面,从而将历史对植物生物多样性与多种生态系统功能之间关系的作用分离出来。我们发现,组装历史的两个方面——建立年份和演替——改变了物种和特征群落的轨迹,进而改变了净初级生产力、分解速率和花卉资源。此外,历史通过改变物种组成、特征、多样性和生态系统功能之间的因果关系,改变了 BEF 关系(从正到负),包括在功能内和跨功能。我们的结果表明,建立过程中确定性演替和环境随机性的相互作用介导了历史偶然性,导致生物多样性和生态系统功能的变化,即使在其他相同的组装条件下也是如此。需要明确关注历史,以了解为什么生物多样性-生态系统功能关系在自然生态系统中会发生变化:这是基础理论与环境变化生物学和生态系统恢复应用交叉的一个关键问题。