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The effects of elevated [CO2] on plant-soil carbon below-ground: A summary and synthesis

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Abstract

We undertake a synthesis of the most relevant results from the presentations at the meeting “Plant-Soil Carbon Below-Ground: The Effects of Elevated CO2” (Oxford-UK, September 1995), many of which are published in this Special Issue. Below-ground responses to elevated [CO2] are important because the capacity of soils for long-term carbon sequestration. We draw the following conclusions: (i) several ecosystems exposed to elevated [CO2] showed sustained increased CO2 uptake at the plot level for many years. A few systems, however, showed complete down-regulation of net CO2 uptake after several years of elevated [CO2] exposure; (ii) under elevated [CO2], a greater proportion of fixed carbon is generally allocated below-ground, potentially increasing the capacity of below-ground sinks; and (iii) some of the increased capacity of these sinks may lead to increased long-term soil carbon sequestration, although strong evidence is still lacking. We highlight the need for more soil studies to be undertaken within ongoing ecosystem-level experiments, and suggest that while some key experiments already established should be maintained to allow long term effects and feedbacks to take place, more research effort should be directed to mechanisms of soil organic matter stabilization.

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References

  • Amthor, J S 1995 Terrestrial higher-plant response to increasing atmospheric [CO2] in relation to the global carbon cycle. Global Change Biol. 1, 243–274.

    Google Scholar 

  • Berntson G M and Bazzaz F A 1996 Below-ground positive and negative feedbacks on CO2 growth enhancement. Plant and Soil 187.

  • Bazzaz, F A 1990 The response of natural eosystems to the rising global CO2 levels. Annu. Rev. Ecol. Syst. 21, 167–196.

    Article  Google Scholar 

  • Cambardella, C A and Elliott, E T 1994 Carbon and nitrogen dynamics of soil organic matter fractions from cultivated grassland soils. Soil Sci. Soc. Am. J. 58, 123–130.

    Google Scholar 

  • Cardon Z G 1996 Influence of rhizodeposition under elevated CO2 on plant nutrition and soil organic matter. Plant and Soil 187.

  • Clark, H, Newton, P C, Bell, C C and Glasgow, E M 1995 The influence of elevated CO2 and simulated seasonal changes in temperature on tissue turnover in pasture turves dominated by perennial ryegrass (Lolium perenne) and white clover (Trifolium repens). J. Appl. Ecol. 32, 128–136.

    Google Scholar 

  • Darrah P R 1996 Rhizodeposition under ambient and elevated CO2 levels. Plant and Soil 187.

  • Diemer, M W 1994 Mid-season gas exchange of an alpine grassland under elevated CO2. Oecologia 98, 429–435.

    Google Scholar 

  • Dhillion S S and Roy J R 1996 Assessing the impact of elevated CO2 on soil microbial activity in a Mediterranean model ecosystem. Plant and Soil 187.

  • Diaz S 1996 Effects of elevated CO2 at the community level mediated by root symbionts. Plant and Soil 187.

  • Diaz, S, Grime, J P, Harris, J and McPherson, E 1993 Evidence of a feedback mechanism limiting plant response to elevated carbon dioxide. Nature 364, 616–617.

    Article  Google Scholar 

  • Drake, B G 1992 A field study of the effects of elevated CO2 on ecosystem processes in a Chesapeake Bay Wetland. Aust. J. Biol. 40, 579–595.

    Google Scholar 

  • Drake B G, Muehe M S, Peresta G, Gonzalez-Meler M A and Matamala R. Acclimation of photosynthesis, respiration and ecosystem carbon flux of a wetland on Chesapeake Bay, Maryland to elevated atmospheric CO2 concentration.

  • Elliot, E T and Cambardella, C A 1991 Physical separation of soil organic matter. Agric. Ecol. Environ. 34, 407–419.

    Article  Google Scholar 

  • Enting, I G and Mansbridge, J V 1989 Seasonal sources and sinks of atmospheric carbon dioxide: Direct inversion of filtered data. Tellus Series B Chem. Phys. Met. 41, 111–126.

    Google Scholar 

  • Field, C B, ChapinIII, F S, Matson, P A and Mooney, H A 1992 Responses of terrestrial ecosystems to the changing atmosphere: a resource-based approach. Annu. Rev. Ecol. Syst. 23, 201–235.

    Article  Google Scholar 

  • Fisher, M J, Rao, I M, Ayarza, M A, Lascano, C E, Sanz, J I, Thomas, R J and Vera, R R 1994 Carbon storage by introduced deep-rooted grasses in the South American savannas. Nature 371, 236–238.

    Article  Google Scholar 

  • Fitter A H, Self G K, Wolfenden J, van Vuuren M M I, Brown T K, Williamson L, GravesJ D, and Robinson D 1996 Root production and mortality under elevated atmospheric carbon dioxide. Plant and Soil 187.

  • Francey, R J, Tans, P P, Allison, C E, Enting, I G, White, J W C and Trolier, M 1995 Changes in oceanic and terrestrial carbon uptake since 1982. Nature 373, 326–333

    Article  Google Scholar 

  • Gifford R M, Lutze J L and Barret D 1996 Global atmospheric change effects on terrestrial carbon sequestration: Exploration with a global C- and N-cycle model (CQUESTN). Plant and Soil 187.

  • Gorissen A 1996 Elevated CO2 evokes quantatitive and qualitative changes in carbon dynamics in a plant/soil system: mechanisms and implications. Plant and Soil 187.

  • Gregory P J, Palta J and Batts G R 1996 Root systems and root:mass ratio-carbon allocation under current and projected atmospheric conditions in arable crops. Plant and Soil 187.

  • Houghton, J T, Meira Filho, L G, Bruce, J, Lee, H, Callander, B A, Haites, E, Harris, N and Maskell, K 1995 Climate Change 1994. IPCC, Cambridge University Press, New York, USA. 339 p.

    Google Scholar 

  • Hungate B A, Jackson R B, Field C B and Chapin III F S 1996 Detecting changes in soil carbon in CO2 enrichment experiments. Plant and Soil 187.

  • Ineson P, Cotrufo M F, Bol R, Harkness D D and Hartwig U 1996 Quantification of soil carbon inputs under elevated carbon dioxide: C3 plants in a C4 soil. Plant and Soil 187.

  • Knapp, A K 1993 Biomass production in a tallgrass prairie ecosystem exposed to ambient and elevated levels of CO2. Ecol. Appl. 3, 644–653.

    Google Scholar 

  • Koch, G W and Mooney, H A 1996 Response of terrestrial ecosystems to elevated CO2: A synthesis and summary. In Carbon Dioxide and Terrestrial Ecosystems. Eds. G WKoch and H AMooney. pp 415–428. Academic Press, San Diego, USA.

    Google Scholar 

  • Körner, Ch, Diemer, M, Schäppi, B and Zimmermann, L 1996 The responses of alpine vegetation to elevated CO2. In Carbon Dioxide and Terrestrial Ecosystems. Eds. G WKoch and H AMooney. pp 177–196. Academic Press, San Diego, USA.

    Google Scholar 

  • Lambers H, Stulen I and van der Werf A 1996 Carbon use in root respiration as affected by elevated atmospheric CO2. Plant and Soil 187.

  • Leavitt, S W, Paul, E A, Kimball, B A, Hendrey, G R, Mauney, J R, Rauschkolb, R, RogersJr, H, Lewin, K F, Nagy, J, PinterJr, P J and Johnson, H B 1994 Carbon isotope dynamics of CO2-enriched FACE cotton and soils. Agric. For. Meteor. 70, 87–101.

    Article  Google Scholar 

  • Leavitt S W, Paul E A, Galadima A, Nakayama F S, Danzer S R, Johnson H and Kimball B A 1996 Carbon isotopes and carbon turnover in cotton and wheat FACE experiments. Plant and Soil 187.

  • Long, S P and Drake, B G 1991 The effect of the long-term CO2 fertilization in the field on the quantum yield of photosynthesis in the C3 sedge, Scirpus olneyi. Plant Physiol. 96, 221–226.

    Google Scholar 

  • Luo, Y, Field, C B and Mooney, H A 1994 Predicting responses of photosynthesis and root fraction to elevated CO2: Interactions among carbon, nitrogen, and growth. Plant Cell Environ. 17, 1195–1204.

    Google Scholar 

  • Mary, B, Mariotti, A and Morel, J 1992 Use of 13C variations at natural abundance for studying the biodegradation of root mucilage, roots and glucose in soil. Soil Biol. Biochem. 24, 1065–1072.

    Article  Google Scholar 

  • McGuire, A D, Melillo, J M and Joyce, L A 1995 The role of nitrogen in the response of forest net primary production to elevated atmospheric carbon dioxide. Annu. Rev. Ecol. Syst. 26, 473–503.

    Article  Google Scholar 

  • Oechel, W C, Cowles, S, Grulke, N, Hastings, S J, Lawrence, B, Prudhomme, T, Riechers, G, Strain, B, Tissue, D and Vourlitis, G 1994 Transient nature of CO2 fertilization in Arctic tundra. Nature 371, 500–503.

    Article  Google Scholar 

  • O'Neill, E G 1994 Response of soil biota to elevated atmospheric carbon dioxide. Plant and Soil 165, 55–65.

    Google Scholar 

  • Owensby, C E, Coyne, P I, Ham, J M, Auen, L M and Knapp, A K 1993 Biomass production in a tallgrass prairie ecosystem exposed to ambient and elevated levels of CO2. Ecol. Appl. 3, 644–653.

    Google Scholar 

  • Paustian K, Elliott E T, Peterson G A and Killian K 1996 Modelling climate, CO2 and management impacts on soil carbon in semiarid agroecosystems. Plant and Soil 187.

  • Rogers H H, Prior S A, Runionand G B and Mitchell R J 1996 Plant response to atmospheric CO2 enrichment: allocation patterns in crops. Plant and Soil 187.

  • Soussana J F and Hartwig U A 1996 The effects of elevated CO2 on symbiotic N2 fixation: a link between the carbon and nitrogen cycles in grassland ecosystems. Plant and Soil 187.

  • Sage, R F 1994 Acclimation of photosynthesis to increasing atmospheric CO2: The gas exchange perspective. Photo. Res. 39, 351–368.

    Article  Google Scholar 

  • Sage, R F 1996 Atmospheric modification and vegetation responses to environmental stress. Global Change Biol. 2, 79–83.

    Google Scholar 

  • Schimel, D S, Braswell, B H, Holland, E A, McKeown, R, Ojima, D S, Painter, T H, Parton, W J and Townsend, A R 1994 Climatic, edaphic, and biotic controls over storage and turnover of carbon in soils. Global Biogeochem. Cycles 8, 279–293.

    Article  Google Scholar 

  • Siegenthaler, U and Sarmiento, J L 1993 Atmospheric carbon dioxide and the ocean. Nature 9, 119–125.

    Article  Google Scholar 

  • Stitt, M 1991 Rising CO2 levels and their potential significance for carbon flow in photosynthetic cells. Plant Cell Environ. 14, 741–762.

    Google Scholar 

  • VanVeen, J A, Liljeroth, E, Lekkerkerk, L J A and van deGeijn, S C 1991 Carbon fluxes in plant-soil systems at elevated atmospheric CO2 levels. Ecol. Appl. 1, 175–181.

    Google Scholar 

  • Van deGeijn, S C and vanVeen, J A 1993 Implications of increased carbon input and turnover in soils. Plant and Soil 104–105, 283–292.

    Google Scholar 

  • VEMAP Members 1995 Vegetation/ecosystem modeling and analysis project: Comparing biogeography and biogeochemistry models in a continental-scale study of terrestrial ecosystem responses to climate change and CO2 doubling. Global Biogeochem. Cycles 9, 407–437.

    Google Scholar 

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Canadell, J.G., Pitelka, L.F. & Ingram, J.S.I. The effects of elevated [CO2] on plant-soil carbon below-ground: A summary and synthesis. Plant Soil 187, 391–400 (1995). https://doi.org/10.1007/BF00017102

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