Department of Evolutionary Biology and Environmental Studies, University of Zurich, Winterthurerstrasse 190, 8057, Zürich, Switzerland.
Department of Aquatic Ecology, Eawag: Swiss Federal Institute of Aquatic Science and Technology, Überlandstrasse 133, 8600, Dübendorf, Switzerland.
Nat Commun. 2018 Nov 16;9(1):4825. doi: 10.1038/s41467-018-07238-2.
Ecosystems are widely interconnected by spatial flows of material, but the overall importance of these flows relative to local ecosystem functioning remains unclear. Here we provide a quantitative synthesis on spatial flows of carbon connecting ecosystems worldwide. Cross-ecosystem flows range over eight orders of magnitude, bringing between 10 and 10 gC m year to recipient ecosystems. Magnitudes are similar to local fluxes in freshwater and benthic ecosystems, but two to three orders of magnitude lower in terrestrial systems, demonstrating different dependencies on spatial flows among ecosystem types. The strong spatial couplings also indicate that ecosystems are vulnerable to alterations of cross-ecosystem flows. Thus, a reconsideration of ecosystem functioning, including a spatial perspective, is urgently needed.
生态系统通过物质的空间流广泛相互连接,但这些流相对于本地生态系统功能的总体重要性仍不清楚。在这里,我们对连接全球生态系统的碳的空间流进行了定量综合。跨生态系统的流动范围跨越了八个数量级,将 10 到 10 gC m 年的碳带到受体生态系统。这些规模与淡水和底栖生态系统的本地通量相似,但在陆地系统中低了两到三个数量级,这表明不同生态系统类型对空间流的依赖程度不同。强烈的空间耦合也表明生态系统容易受到跨生态系统流变化的影响。因此,迫切需要重新考虑包括空间视角在内的生态系统功能。