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Elevated CO2 and plant species diversity interact to slow root decomposition
Authors:Marie-Anne de Graaff  Christopher W Schadt  Johan Six  Aimee T Classen
Institution:a Department of Biological Sciences, Boise State University, 1910 University drive, Boise, ID 83725, USA
b Biosciences Division, Molecular Microbial Ecology Group, Oak Ridge National Laboratory, Oak Ridge, TN 37831-6422, USA
c Department of Plant Sciences, University of California-Davis, One Shields Avenue, Davis, CA 95616, USA
d Department of Ecology and Evolutionary Biology, University of Tennessee-Knoxville, Knoxville, TN, USA
Abstract:Changes in plant species diversity can result in synergistic increases in decomposition rates, while elevated atmospheric CO2 can slow the decomposition rates; yet it remains unclear how diversity and changes in atmospheric CO2 may interact to alter root decomposition. To investigate how elevated CO2 interacts with changes in root-litter diversity to alter decomposition rates, we conducted a 120-day laboratory incubation. Roots from three species (Trifolium repens, Lespedeza cuneata, and Festuca pratense) grown under ambient or elevated CO2 were incubated individually or in combination in soils that were exposed to ambient or elevated CO2 for five years. Our experiment resulted in two main findings: (1) Roots from T. repens and L. cuneata, both nitrogen (N) fixers, grown under elevated CO2 treatments had significantly slower decomposition rates than similar roots grown under ambient CO2 treatments; but the decomposition rate of F. pratense roots (a non-N-fixing species) was similar regardless of CO2 treatment. (2) Roots of the three species grown under ambient CO2 and decomposed in combination with each other had faster decomposition rates than when they were decomposed as single species. However, roots of the three species grown under elevated CO2 had similar decomposition rates when they were incubated alone or in combination with other species. These data suggest that if elevated CO2 reduces the root decomposition rate of even a few species in the community, it may slow root decomposition of the entire plant community.
Keywords:Roots  Elevated CO2  Species diversity  Litter quality  Decomposition  Carbon-13  Nitrogen mineralization
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