Barros Ceres, Thuiller Wilfried, Georges Damien, Boulangeat Isabelle, Münkemüller Tamara
Laboratoire d'Écologie Alpine (LECA), Univ. Grenoble Alpes, F-38000, Grenoble, France.
Laboratoire d'Écologie Alpine (LECA), CNRS, F-38000, Grenoble, France.
Ecol Lett. 2016 Jul;19(7):729-42. doi: 10.1111/ele.12617.
Although our knowledge on the stabilising role of biodiversity and on how it is affected by perturbations has greatly improved, we still lack a comprehensive view on ecosystem stability that is transversal to different habitats and perturbations. Hence, we propose a framework that takes advantage of the multiplicity of components of an ecosystem and their contribution to stability. Ecosystem components can range from species or functional groups, to different functional traits, or even the cover of different habitats in a landscape mosaic. We make use of n-dimensional hypervolumes to define ecosystem states and assess how much they shift after environmental changes have occurred. We demonstrate the value of this framework with a study case on the effects of environmental change on Alpine ecosystems. Our results highlight the importance of a multidimensional approach when studying ecosystem stability and show that our framework is flexible enough to be applied to different types of ecosystem components, which can have important implications for the study of ecosystem stability and transient dynamics.
尽管我们对生物多样性的稳定作用以及它如何受到扰动影响的认识有了很大提高,但我们仍然缺乏一个贯穿不同栖息地和扰动的生态系统稳定性的全面观点。因此,我们提出了一个框架,该框架利用生态系统组成部分的多样性及其对稳定性的贡献。生态系统组成部分的范围可以从物种或功能组,到不同的功能性状,甚至是景观镶嵌体中不同栖息地的覆盖度。我们利用n维超体积来定义生态系统状态,并评估环境变化发生后它们的变化程度。我们通过一个关于环境变化对高山生态系统影响的案例研究来证明这个框架的价值。我们的结果强调了在研究生态系统稳定性时采用多维方法的重要性,并表明我们的框架足够灵活,可以应用于不同类型的生态系统组成部分,这可能对生态系统稳定性和瞬态动态的研究产生重要影响。