Sensitivity of grassland carbon pools to plant diversity, elevated CO<sub>2</sub>, and soil nitrogen addition over 19 years.
basic_science · Level V
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- Record sourced from PubMed, PMID 33875587.
- Also identified by DOI 10.1073/pnas.2016965118 and PMC identifier 8092561.
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Abstract
Whether the terrestrial biosphere will continue to act as a net carbon (C) sink in the face of multiple global changes is questionable. A key uncertainty is whether increases in plant C fixation under elevated carbon dioxide (CO<sub>2</sub>) will translate into decades-long C storage and whether this depends on other concurrently changing factors. We investigated how manipulations of CO<sub>2</sub>, soil nitrogen (N) supply, and plant species richness influenced total ecosystem (plant + soil to 60 cm) C storage over 19 y in a free-air CO<sub>2</sub> enrichment grassland experiment (BioCON) in Minnesota. On average, after 19 y of treatments, increasing species richness from 1 to 4, 9, or 16 enhanced total ecosystem C storage by 22 to 32%, whereas N addition of 4 g N m<sup>-2</sup> ⋅ y<sup>-1</sup> and elevated CO<sub>2</sub> of +180 ppm had only modest effects (increasing C stores by less than 5%). While all treatments increased net primary productivity, only increasing species richness enhanced net primary productivity sufficiently to more than offset enhanced C losses and substantially increase ecosystem C pools. Effects of the three global change treatments were generally additive, and we did not observe any interactions between CO<sub>2</sub> and N. Overall, our results call into question whether elevated CO<sub>2</sub> will increase the soil C sink in grassland ecosystems, helping to slow climate change, and suggest that losses of biodiversity may influence C storage as much as or more than increasing CO<sub>2</sub> or high rates of N deposition in perennial grassland systems.
Medical subject headings
- Carbon
- Grassland
- Nitrogen
- Soil