Isoscapes resolve species-specific spatial patterns in plant-plant interactions in an invaded Mediterranean dune ecosystem.

Christine Hellmann, Katherine G Rascher, Jens Oldeland, Christiane Werner

Journal: Tree physiology 2017;36(12):1460-1470

PMID: 27587484

Abstract

Environmental heterogeneity and plant-plant interactions are key factors shaping plant communities. However, the spatial dimension of plant-plant interactions has seldom been addressed in field studies. This is at least partially rooted in a lack of methods that can accurately resolve functional processes in a spatially explicit manner. Isoscapes, that is, spatially explicit representations of stable isotope data, provide a versatile means to trace functional changes on spatial scales, for example, related to N-cycling (foliar δN) and water use efficiency (WUE, foliar δC). In a case study in a nutrient-depleted Mediterranean dune ecosystem, we analysed the spatial impact of the invasive N-fixing Acacia longifolia on three native species of different functional types using δN and δC isoscapes and spatial autocorrelation analyses. Isoscapes revealed strong spatial patterns in δN and δC with pronounced species-specific differences, demonstrating distinct spatial ranges of plant-plant interactions. A coniferous tree and an ericaceous dwarf shrub showed significant enrichment in δN within a range of 5-8 m surrounding the canopy of A. longifolia, indicating input of N originating from symbiotic N-fixation by the invader. In the dwarf shrub, which was most responsive to invader influence, enrichment in δC additionally demonstrated spatially explicit changes to WUE, while a native N-fixer was unresponsive to the presence of the invader. Furthermore, δN and δC isoscapes yielded different patterns, indicating that plant-plant interactions can have distinct spatial distributions and ranges based on the process measured. Additionally, the magnitude of the effect differed between field situations with high and low invasion pressure. This study highlights that the spatial scale must be accounted for when assessing the effects and outcome of species interactions. Functional tracers such as stable isotopes enable us to quantify spatial ranges of plant-plant interactions, providing empirical data that can help to better understand and predict complex species interactions in multifaceted natural environments.

© The Author 2016. Published by Oxford University Press. All rights reserved. For Permissions, please e-mail: [email protected].

Address: Experimental and Systems Ecology, University of Bielefeld, Universitätsstraße 25, 33615 Bielefeld, Germany [email protected].; Department of Ecosystem Physiology, University of Freiburg, Georges-Köhler-Allee 53/54, 79110, Freiburg, Germany.; Biodiversity, Evolution and Ecology of Plants, Biocentre Klein Flottbek and Botanical Garden, University of Hamburg, Ohnhorststraße 18, 22609, Hamburg, Germany.

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