Abstract
AbstractVegetation change has consequences for terrestrial ecosystem structure and functioning and may involve climate feedbacks. Hence, when monitoring ecosystem states and changes thereof, the vegetation is often a primary monitoring target. Here, we summarize current understanding of vegetation change in the High Arctic—the World’s most rapidly warming region—in the context of ecosystem monitoring. To foster development of deployable monitoring strategies, we categorize different kinds of drivers (disturbances or stresses) of vegetation change either as pulse (i.e. drivers that occur as sudden and short events, though their effects may be long lasting) or press (i.e. drivers where change in conditions remains in place for a prolonged period, or slowly increases in pressure). To account for the great heterogeneity in vegetation responses to climate change and other drivers, we stress the need for increased use of ecosystem-specific conceptual models to guide monitoring and ecological studies in the Arctic. We discuss a conceptual model with three hypothesized alternative vegetation states characterized by mosses, herbaceous plants, and bare ground patches, respectively. We use moss-graminoid tundra of Svalbard as a case study to discuss the documented and potential impacts of different drivers on the possible transitions between those states. Our current understanding points to likely additive effects of herbivores and a warming climate, driving this ecosystem from a moss-dominated state with cool soils, shallow active layer and slow nutrient cycling to an ecosystem with warmer soil, deeper permafrost thaw, and faster nutrient cycling. Herbaceous-dominated vegetation and (patchy) bare ground would present two states in response to those drivers. Conceptual models are an operational tool to focus monitoring efforts towards management needs and identify the most pressing scientific questions. We promote greater use of conceptual models in conjunction with a state-and-transition framework in monitoring to ensure fit for purpose approaches. Defined expectations of the focal systems’ responses to different drivers also facilitate linking local and regional monitoring efforts to international initiatives, such as the Circumpolar Biodiversity Monitoring Program.
Publisher
Springer Science and Business Media LLC
Subject
Ecology,Environmental Chemistry,Geography, Planning and Development,General Medicine
Reference84 articles.
1. Adakudlu, M., J. Andresen, J. Bakke, S. Beldring, R. E. Benestad, W. Bilt, J. Boden, C. Borstad, et al. 2019. Climate in Svalbard 2100—A knowledge base for climate adaptation.
2. Albon, S.D., R.J. Irvine, O. Halvorsen, R. Langvatn, L.E. Loe, E. Ropstad, V. Veiberg, R. Van Der Wal, et al. 2017. Contrasting effects of summer and winter warming on body mass explain population dynamics in a food-limited Arctic herbivore. Global Change Biology 23: 1374–1389.
3. Alsos, I.G., C. Ware, and R. Elven. 2015. Past Arctic aliens have passed away, current ones may stay. Biological Invasions 17: 3113–3123.
4. Anderson, H.B., T.G. Godfrey, S.J. Woodin, and R. van der Wal. 2012. Finding food in a highly seasonal landscape: Where and how pink footed geese Anser brachyrhynchus forage during the Arctic spring. Journal of Avian Biology 43: 415–422.
5. Anderson, H.B., J.D.M. Speed, J. Madsen, A.O. Pedersen, I.M. Tombre, and R. van der Wal. 2016. Late snow melt moderates herbivore disturbance of the Arctic tundra. Ecoscience 23: 29–39.
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