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The influence of soil age on ecosystem structure and function across biomes

pmid: 32948775
pmc: PMC7501311
handle: 10261/237383 , 10919/102302 , 11343/251613 , 1959.7/uws:61749 , 10356/147585
pmid: 32948775
pmc: PMC7501311
handle: 10261/237383 , 10919/102302 , 11343/251613 , 1959.7/uws:61749 , 10356/147585
AbstractThe importance of soil age as an ecosystem driver across biomes remains largely unresolved. By combining a cross-biome global field survey, including data for 32 soil, plant, and microbial properties in 16 soil chronosequences, with a global meta-analysis, we show that soil age is a significant ecosystem driver, but only accounts for a relatively small proportion of the cross-biome variation in multiple ecosystem properties. Parent material, climate, vegetation and topography predict, collectively, 24 times more variation in ecosystem properties than soil age alone. Soil age is an important local-scale ecosystem driver; however, environmental context, rather than soil age, determines the rates and trajectories of ecosystem development in structure and function across biomes. Our work provides insights into the natural history of terrestrial ecosystems. We propose that, regardless of soil age, changes in the environmental context, such as those associated with global climatic and land-use changes, will have important long-term impacts on the structure and function of terrestrial ecosystems across biomes.
- Newcastle University United Kingdom
- UNSW Sydney Australia
- National Taiwan University of Arts Taiwan
- United States Department of the Interior United States
- University of Minnesota Morris United States
570, Time Factors, 550, Life on Land, Science, Ecosystem ecology, Climate, Veterinary and Food Sciences, Article, Soil, XXXXXX - Unknown, Engineering::Environmental engineering, Ecosystem services, Biomass, Macroecology, Ecosystem, Agricultural, Ecology, Bacteria, Forestry Sciences, Microbiota, Q, Fungi, 500, Biodiversity, Biological Sciences, Biogeochemistry, Plants, Ecosystem Ecology, Biota, :Environmental engineering [Engineering], Environmental Sciences
570, Time Factors, 550, Life on Land, Science, Ecosystem ecology, Climate, Veterinary and Food Sciences, Article, Soil, XXXXXX - Unknown, Engineering::Environmental engineering, Ecosystem services, Biomass, Macroecology, Ecosystem, Agricultural, Ecology, Bacteria, Forestry Sciences, Microbiota, Q, Fungi, 500, Biodiversity, Biological Sciences, Biogeochemistry, Plants, Ecosystem Ecology, Biota, :Environmental engineering [Engineering], Environmental Sciences
citations This is an alternative to the "Influence" indicator, which also reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).65 popularity This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network.Top 1% influence This indicator reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).Top 10% impulse This indicator reflects the initial momentum of an article directly after its publication, based on the underlying citation network.Top 1% visibility views 63 download downloads 166 - 63views166downloads
Data source Views Downloads DIGITAL.CSIC 63 166


