CEFE UMR 5175, CNRS - Université de Montpellier - Université Paul-Valéry Montpellier - EPHE, F-34293, Montpellier cedex 5, Montpellier, France.
Forest Ecology, Institute of Terrestrial Ecosystems ETH Zürich, CH-8092, Zürich, Switzerland.
Sci Rep. 2018 Apr 4;8(1):5627. doi: 10.1038/s41598-018-23763-y.
Climate change affects ecosystem functioning directly through impacts on plant physiology, resulting in changes of global productivity. However, climate change has also an indirect impact on ecosystems, through changes in the composition and diversity of plant communities. The relative importance of these direct and indirect effects has not been evaluated within a same generic approach yet. Here we took advantage of a novel approach for disentangling these two effects in European temperate forests across a large climatic gradient, through a large simulation-based study using a forest succession model. We first showed that if productivity positively correlates with realized tree species richness under a changed climate, indirect effects appear pivotal to understand the magnitude of climate change impacts on forest productivity. We further detailed how warmer and drier conditions may affect the diversity-productivity relationships (DPRs) of temperate forests in the long term, mostly through effects on species recruitment, ultimately enhancing or preventing complementarity in resource use. Furthermore, losing key species reduced the strength of DPRs more severely in environments that are becoming climatically harsher. By disentangling direct and indirect effects of climate change on ecosystem functioning, these findings explain why high-diversity forests are expected to be more resilient to climate change.
气候变化通过对植物生理学的影响直接影响生态系统功能,从而导致全球生产力的变化。然而,气候变化也通过植物群落组成和多样性的变化对生态系统产生间接影响。在同一个通用方法中,还没有评估这些直接和间接影响的相对重要性。在这里,我们利用一种新颖的方法,通过使用森林演替模型进行大规模的模拟研究,在一个大的气候梯度上,对欧洲温带森林中的这两种影响进行了区分。我们首先表明,如果生产力在气候变化下与实际树种丰富度呈正相关,那么间接影响对于理解气候变化对森林生产力的影响程度至关重要。我们进一步详细说明了在长期内,温暖和干燥的条件如何通过对物种补充的影响来影响温带森林的多样性-生产力关系(DPR),最终增强或阻止资源利用的互补性。此外,在气候变得更加恶劣的环境中,失去关键物种会更严重地降低 DPR 的强度。通过区分气候变化对生态系统功能的直接和间接影响,这些发现解释了为什么高多样性的森林预计对气候变化更具弹性。