References
Agrawal AA, Fishbein M (2006
)
Plant defense syndromes.
Ecology
87, S132–S149.
|
CrossRef |
PubMed |
Agrell J, Anderson P, Oleszek W, Stochmal A, Agrell C (2006
)
Elevated CO
2 levels and herbivore damage alter host plant preferences.
Oikos
112, 63–72.
|
CrossRef |
Ainsworth EA, Long SP (2005
)
What have we learned from 15 years of free-air CO
2 enrichment (FACE)? A meta-analytic review of the responses of photosynthesis, canopy properties and plant production to rising CO
2.
New Phytologist
165, 351–372.
|
CrossRef |
PubMed |
Ainsworth EA, Rogers A (2007
)
The response of photosynthesis and stomatal conductance to rising [CO
2]: mechanisms and environmental interactions.
Plant Cell and Environment
30, 258–270.
|
CrossRef |
CAS |
Alberton O, Kuyper TW, Gorissn A (2005
)
Taking mycocentrism seriously: mycorrhizal fungal and plant responses to elevated CO
2.
New Phytologist
167, 859–868.
|
CrossRef |
CAS |
PubMed |
Allen MF, Swenson W, Querejeta JI, Egerton-Warburton LM, Treseder KK (2003
)
Ecology of mycorrhizae: a conceptual framework for complex interactions among plants and fungi.
Annual Review of Phytopathology
41, 271–303.
|
CrossRef |
CAS |
PubMed |
Ames RN, Reid CPP, Porter LK, Cambardella C (1983
)
Hyphal uptake and transport of nitrogen from two
15N-labelled sources by
Glomus mosseae, a vesicular arbuscular mycorrhizal fungus.
New Phytologist
95, 381–396.
|
CrossRef |
Bago B, Azcón-Aguilar C, Goulet A, Piché Y (1998
)
Branched adsorbing structures (BAS): a feature of the extraradical mycelium of symbiotic arbuscular mycorrhizal fungi.
New Phytologist
139, 375–388.
|
CrossRef |
Bazin A, Goverde M, Erhardt A, Shykoff JA (2002
)
Influence of atmospheric carbon dioxide enrichment on induced response and growth compensation after herbivore damage in
Lotus corniculatus.
Ecological Entomology
27, 271–278.
|
CrossRef |
Bennett AE, Alers-Garcia J, Bever JD (2006
)
Three-way interactions among mutualistic mycorrhizal fungi, plants, and plant enemies: hypotheses and synthesis.
American Naturalist
167, 141–152.
|
CrossRef |
PubMed |
Bidart-Bouzat MG, Imeh-Nathaniel A (2008
)
Global change effects on plant chemical defenses against insect herbivores.
Journal of Integrative Plant Biology
50, 1339–1354.
|
CrossRef |
CAS |
PubMed |
Bloom AJ, Burger M, Asensio JSR, Cousins AB (2010
)
Carbon dioxide enrichment inhibits nitrate assimilation in wheat and
Arabidopsis.
Science
328, 899–903.
|
CrossRef |
CAS |
PubMed |
Boege K, Marquis RJ (2005
)
Facing herbivory as you grow up: the ontogeny of resistance in plants.
Trends in Ecology & Evolution
20, 441–448.
|
CrossRef |
Campbell CD, Sage RF (2006
)
Interactions between the effects of atmospheric CO
2 content and P nutrition on photosynthesis in white lupin (
Lupinus alba L.)
Plant, Cell & Environment
29, 844–853.
|
CrossRef |
CAS |
PubMed |
Cardoso A, Ernesto M, Cliff J, Egan SV, Bradbury JH (1998
)
Cyanogenic potential of cassava flour: field trial in Mozambique of a simple kit.
International Journal of Food Sciences and Nutrition
49, 93–99.
|
CrossRef |
CAS |
PubMed |
Cavagnaro TR (2008
)
The role of arbuscular mycorrhizas in improving plant zinc nutrition under low soil zinc concentrations: a review.
Plant and Soil
304, 315–325.
|
CrossRef |
CAS |
Cavagnaro TR, Smith FA, Lorimer MF, Haskard KA, Ayling SM, Smith SE (2001
)
Quantitative development of Paris-type arbuscular mycorrhizas formed between
Asphodelus fistulosus and
Glomus coronatum.
New Phytologist
149, 105–113.
|
CrossRef |
Cavagnaro TR, Smith FA, Smith SE, Jakobsen I (2005
)
Functional diversity in arbuscular mycorrhizas: exploitation of soil patches with different phosphate enrichment differs among fungal species.
Plant, Cell & Environment
164, 485–491.
Cavagnaro TR, Sokolow SK, Jackson LE (2007
)
Mycorrhizal effects on growth and nutrition of tomato under elevated atmospheric carbon dioxide.
Functional Plant Biology
34, 730–736.
|
CrossRef |
CAS |
Chen X, Tu C, Burton MG, Watson DM, Burkey KO, Hu S (2007
)
Plant nitrogen acquisition and interactions under elevated carbon dioxide: impact of endophytes and mycorrhizae.
Global Change Biology
13, 1238–1249.
|
CrossRef |
Coley PD, Massa M, Lovelock CE, Winter K (2002
)
Effects of elevated CO
2 on foliar chemistry of saplings of nine species of tropical tree.
Oecologia
133, 62–69.
|
CrossRef |
Collins-Johnson N, Wolf J, Reyes MA, Panter A, Koch GW, Redman A (2005
)
Species of plants and associated arbuscular mycorrhizal fungi mediate mycorrhizal responses to CO
2 enrichment.
Global Change Biology
11, 1156–1166.
|
CrossRef |
Conroy JP, Milham PJ, Barlow EWR (1992
)
Effect of nitrogen and phosphorus availability on the growth-response of
Eucalyptus grandis to high CO
2.
Plant, Cell & Environment
15, 843–847.
|
CrossRef |
CAS |
Cordell D, Drangert J-O, White S (2009
)
The story of phosphorus: global food security and food for thought.
Global Environmental Change
19, 292–305.
|
CrossRef |
Cornelissen T, Fernandes GW, Vasconcellos-Neto J (2008
)
Size does matter: variation in herbivory between and within plants and the plant vigor hypothesis.
Oikos
117, 1121–1130.
|
CrossRef |
Cotrufo MF, Ineson P, Scott A (1998
)
Elevated CO
2 reduces the nitrogen concentration of plant tissues.
Global Change Biology
4, 43–54.
|
CrossRef |
Daepp M, Nösberger J, Lüscher A (2001
)
Nitrogen fertilization and developmental stage alter the response of
Lolium perenne to elevated CO
2.
New Phytologist
150, 347–358.
|
CrossRef |
CAS |
de Graaff MA, van Groeningen KJ, Six J, Hungate BA, van Kessel C (2006
)
Interactions between plant growth and nutrient dynamics under elevated CO
2: a meta analysis.
Global Change Biology
12, 2077–2091.
|
CrossRef |
Dickson S (2004
)
The Arum–Paris continuum of mycorrhizal symbioses.
New Phytologist
163, 187–200.
|
CrossRef |
Dickson S, Kolesik P (1999
)
Visualisation of mycorrhizal fungal structures and quantification of their surface area and volume using laser scanning confocal microscopy.
Mycorrhiza
9, 205–213.
|
CrossRef |
Dickson S, Smith SE (2001
)
Cross walls in arbuscular trunk hyphae form after loss of metabolic activity.
New Phytologist
151, 735–742.
|
CrossRef |
Dijkstra FA, Blumenthal D, Morgan JA, LeCain DR, Follett RF (2010
)
Elevated CO
2 effects on semi-arid grassland plants in relation to water availability and competition.
Functional Ecology
24, 1152–1161.
|
CrossRef |
Drake BG, Gonzàlez-Meler MA, Long SP (1997
)
More efficient plants: a consequence of rising atmospheric CO
2?
Annual Review of Plant Physiology and Plant Molecular Biology
48, 609–639.
|
CrossRef |
CAS |
PubMed |
Edwards EJ, McCaffery S, Evans JR (2005
)
Phosphorus status determines biomass response to elevated CO
2 in a legume: C
4 grass community.
Global Change Biology
11, 1968–1981.
Erbs M, Manderscheid R, Jansen G, Seddig S, Pacholski A, Weigel H-J (2010
)
Effects of free-air CO
2 enrichment and nitrogen supply on grain quality parameters and elemental composition of wheat and barley grown in a crop rotation.
Agriculture Ecosystems & Environment
136, 59–68.
|
CrossRef |
CAS |
Gamper H, Peter M, Jansa J, Luscher A, Hartwig UA, Leuchtmann A (2004
)
Arbuscular mycorrhizal fungi benefit from 7 years of free air CO
2 enrichment in well-fertilized grass and legume monocultures.
Global Change Biology
10, 189–199.
|
CrossRef |
Gamper H, Hartwig UA, Leuchtmann A (2005
)
Mycorrhizas improve nitrogen nutrition of
Trifolium repens after 8 yr of selection under elevated atmospheric CO
2 partial pressure.
New Phytologist
167, 531–542.
|
CrossRef |
CAS |
PubMed |
Gange AC, West HM (1994
)
Interactions between arbuscular mycorrhizal fungi and foliar-feeding insects in
Plantago lanceolata L.
New Phytologist
128, 79–87.
|
CrossRef |
Garcia MO, Ovasapyan T, Greas M, Treseder KK (2008
)
Mycorrhizal dynamics under elevated CO
2 and nitrogen fertilization in a warm temperate forest.
Plant and Soil
303, 301–310.
|
CrossRef |
CAS |
Gavito ME, Bruhn D, Jakobsen I (2002
)
P uptake by arbuscular mycorrhizal hyphae does not increase when the host plant grows under atmospheric CO
2 enrichment.
New Phytologist
154, 751–760.
|
CrossRef |
CAS |
Gavito ME, Schweiger P, Jakobsen I (2003
)
P uptake by arbuscular mycorrhizal hyphae: effect of soil temperature and atmospheric CO
2 enrichment.
Global Change Biology
9, 106–116.
|
CrossRef |
Ghannoum O, von Caemmerer S, Barlow EWR, Conroy JP (1997
)
The effect of CO
2 enrichment and irradiance on the growth, morphology and gas exchange of a C
3 (Panicum laxum) and a C
4 (Panicum antidotale) grass.
Australian Journal of Plant Physiology
24, 227–237.
|
CrossRef |
CAS |
Glassop D, Smith SE, Smith FW (2005
)
Cereal phosphate transporters associated with the mycorrhizal pathway of phosphate uptake in roots.
Planta
222, 688–698.
|
CrossRef |
CAS |
PubMed |
Gleadow RM, Woodrow IE (2000
)
Temporal and spatial variation in cyanogenic glycosides in
Eucalyptus cladocalyx.
Tree Physiology
20, 591–598.
|
CAS |
PubMed |
Gleadow RM, Woodrow IE (2002
)
Constraints on effectiveness of cyanogenic glycosides in herbivore defense.
Journal of Chemical Ecology
28, 1301–1313.
|
CrossRef |
CAS |
PubMed |
Gleadow RM, Foley WJ, Woodrow IE (1998
)
Enhanced CO
2 alters the relationship between photosynthesis and defence in cyanogenic
Eucalyptus cladocalyx F. Muell.
Plant, Cell & Environment
21, 12–22.
|
CrossRef |
CAS |
Gleadow RM, Edwards E, Evans J (2009
a)
Changes in nutritional value of cyanogenic
Trifolium repens at elevated CO
2.
Journal of Chemical Ecology
35, 476–478.
|
CrossRef |
CAS |
PubMed |
Gleadow RM, Evans J, McCaffrey S, Cavagnaro TR (2009
b)
Growth and nutritive value of cassava (
Manihot esculenta Cranz.) are reduced when grown at elevated CO
2.
Plant Biology
11, 76–82.
|
CrossRef |
CAS |
PubMed |
Gleadow R, Cavagnaro T, O’Donnell N, Evans J, Neale A, Blomstedt C, Hamill J (2009
c)
Unbalancing global resources: will plants be edible in a high CO
2 world?
Comparative Biochemistry and Physiology. Part A, Molecular & Integrative Physiology
153, s225
|
CrossRef |
González-Guerrero M, Azcón-Aguilar C, Mooney M, Valderas A, MacDiarmid CW, Eide DJ, Ferrol N (2005
)
Characterization of a
Glomus intraradices gene encoding a putative Zn transporter of the cation diffusion facilitator family.
Fungal Genetics and Biology
42, 130–140.
|
CrossRef |
PubMed |
González-Guerrero M, Cano C, Azcón-Aguilar C, Ferrol N (2007
)
GintMT1 encodes a functional metallothionein in
Glomus intraradices that responds to oxidative stress.
Mycorrhiza
17, 327–335.
|
CrossRef |
PubMed |
Gregory PJ, Johnson SN, Newton AC, Ingram JSI (2009
)
Integrating pests and pathogens into the climate change/food security debate.
Journal of Experimental Botany
60, 2827–2838.
|
CrossRef |
CAS |
PubMed |
Grünzweig JM, Körner C (2003
)
Differential phosphorus and nitrogen effects drive species and community responses to elevated CO
2 in semi-arid grassland.
Functional Ecology
17, 766–777.
|
CrossRef |
Hartwig UA, Wittmann P, Braun R, Hartwig-Räz B, Jansa J, Mozafar A, Lüscher A, Leuchtmann A, Frossard E, Nösberger J (2002
)
Arbuscular mycorrhiza infection enhances the growth response of
Lolium perenne to elevated atmospheric
pCO
2.
Journal of Experimental Botany
53, 1207–1213.
|
CrossRef |
CAS |
PubMed |
Haugen R, Steffes L, Wolf J, Brown P, Matzner S, Siemens DH (2008
)
Evolution of drought tolerance and defense: dependence of tradeoffs on mechanism, environment and defense switching.
Oikos
117, 231–244.
|
CrossRef |
Högy P, Fangmeier A (2008
)
Effects of elevated atmospheric CO
2 on grain quality of wheat.
Journal of Cereal Science
48, 580–591.
|
CrossRef |
Högy P, Wieser H, Köhler P, Schwadorf K, Breuer J, Franzaring J, Muntifering R, Fangmeier A (2009
)
Effects of elevated CO
2 on grain yield and quality of wheat: results from a 3-year free-air CO
2 enrichment experiment.
Plant Biology
11, 60–69.
|
CrossRef |
PubMed |
Högy P, Franzaring J, Schwadorf K, Breuer J, Schultze W, Fangmeier A (2010
)
Effects of free-air CO
2 enrichment on energy traits and seed quality of oilseed rape.
Agriculture Ecosystems & Environment
139, 239–244.
|
CrossRef |
Hu S, Tu C, Chen X, Gruver JB (2006
)
Progressive N limitation of plant response to elevated CO
2: a microbiological perspective.
Plant and Soil
289, 47–58.
|
CrossRef |
CAS |
IPCC (2007) Technical summary. In ‘Climate change 2007: the physical science basis. Contribution of Working Group I to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change’. pp. 19–91. (Cambridge University Press: Cambridge)
Jackson LE, Burger M, Cavagnaro TR (2008
)
Roots, nitrogen transformations, and ecosystem services.
Annual Review of Plant Biology
59, 341–363.
|
CrossRef |
CAS |
PubMed |
Jifon JL, Graham JH, Drouillard DL, Syvertsen JP (2002
)
Growth depression of mycorrhizal
Citrus seedlings grown at high phosphorus supply is mitigated by elevated CO
2.
New Phytologist
153, 133–142.
|
CrossRef |
Johansen A, Jakobsen I, Jensen ES (1993
)
External hyphae of vesicular-arbuscular mycorrhizal fungi associated with
Trifolium subterraneum. 3. Hyphal transport of
32P and
15N.
New Phytologist
124, 61–68.
|
CrossRef |
CAS |
Jones DA (1998
)
Why are so many food plants cyanogenic?
Phytochemistry
47, 155–162.
|
CrossRef |
CAS |
PubMed |
Kimball BA, Morris CE, Pinter PJ, Wall GW, Hunsaker DJ, Adamsen FJ, LaMorte RL, Leavitt SW, Thompson TL, Matthias AD, Brooks TJ (2001
)
Elevated CO
2, drought and soil nitrogen effects on wheat grain quality.
New Phytologist
150, 295–303.
|
CrossRef |
CAS |
Klironomos JN, Ursic M, Rillig M, Allen MF (1998
)
Interspecific differences in the response of arbuscular mycorrhizal fungi to
Artemisia tridentata grown under elevated atmospheric CO
2.
New Phytologist
138, 599–605.
|
CrossRef |
Lambers H (1993
)
Rising CO
2, secondary plant metabolism, plant–herbivore interactions and litter decomposition: theoretical considerations.
Vegetation
104–105, 263–271.
|
CrossRef |
Lawler IR, Foley WJ, Woodrow IE, Cork SJ (1997
)
The effects of elevated CO
2 atmospheres on the nutritional quality of
Eucalyptus foliage and its interaction with soil nutrient and light availability.
Oecologia
109, 59–68.
|
CrossRef |
Lincoln DE, Fajer ED, Johnson RH (1993
)
Plant insect herbivore interactions in elevated CO
2 environments.
Trends in Ecology & Evolution
8, 64–68.
|
CrossRef |
CAS |
Lindroth RL (2010
)
Impacts of elevated atmospheric CO
2 and O
3 on forests: phytochemistry, trophic interactions and ecosystem dynamics.
Journal of Chemical Ecology
36, 2–21.
|
CrossRef |
CAS |
Lindroth RL, Kinney KK, Platz CL (1993
)
Responses of deciduous trees to elevated atmospheric CO
2: productivity, phytochemistry and insect performance.
Ecology
74, 763–777.
|
CrossRef |
CAS |
Loladze I (2002
)
Rising atmospheric CO
2 and human nutrition: toward globally imbalanced plant stoichiometery.
Trends in Ecology & Evolution
17, 457–461.
|
CrossRef |
Lovelock C, Kyllo D, Popp M, Isopp H, Virgo A, Winter K (1997
)
Symbiotic vesicular arbuscular mycorrhizae influence maximum rates of photosynthesis in tropical tree seedlings grown under elevated CO
2.
Australian Journal of Plant Physiology
24, 185–194.
|
CrossRef |
CAS |
Lukac M, Calfapietra C, Godbold DL (2003
)
Production, turnover and mycorrhizal colonization of root systems of three
Populus species grown under elevated CO
2 (POPFACE).
Global Change Biology
9, 838–848.
|
CrossRef |
Lukac M, Calfapietra C, Lagomarsino A, Loreto F (2010
)
Global climate change and tree nutrition: effects of elevated CO
2 and temperature.
Tree Physiology
30, 1209–1220.
|
CrossRef |
CAS |
PubMed |
Martre P, Porter JR, Jamieson PD, Triboi E (2003
)
Modeling grain nitrogen accumulation and protein composition to understand the sink/source regulations of nitrogen remobilization for wheat.
Plant Physiology
133, 1959–1967.
|
CrossRef |
CAS |
PubMed |
Matros A, Amme S, Kettig B, Buck-Sorlin GH, Sonnewald U, Mock HP (2006
)
Growth at elevated CO
2 concentrations leads to modified profiles of secondary metabolites in tobacco cv. SamsunNN and to increased resistance against infection with potato virus Y.
Plant, Cell & Environment
29, 126–137.
|
CrossRef |
CAS |
PubMed |
Nowak RS, Ellsworth DS, Smith SD (2004
)
Functional responses of plants to elevated atmospheric CO
2 – do photosynthetic and productivity data from FACE experiments support early predictions?
New Phytologist
162, 253–280.
|
CrossRef |
Olesniewicz KS, Thomas RB (1999
)
Effects of mycorrhizal colonization on biomass prodution and nitrogen fixation of black locust (
Robinia pseudoacacia) seedlings grown under elevated atmospheric carbon dioxide.
New Phytologist
142, 133–140.
|
CrossRef |
Olsrud M, Carlsson BA, Svensson BM, Michelsen A, Melillo JM (2010
)
Responses of fungal root colonization, plant cover and leaf nutrients to long-term exposure to elevated atmospheric CO
2 and warming in a subarctic birch forest understorey.
Global Change Biology
16, 1820–1829.
|
CrossRef |
Peñuelas J, Estiarte M (1998
)
Can elevated CO
2 affect secondary metabolism and ecosystem function?
Trends in Ecology & Evolution
13, 20–24.
|
CrossRef |
Reich PB, Hobbie SE, Lee TD, Ellsworth DS, West JB, Timan D, Knops JMH, Naeem S, Trost J (2006
)
Nitrogen limitation constraints sustainability of ecosystem response to CO
2.
Nature
440, 922–925.
|
CrossRef |
CAS |
PubMed |
Rhoades DF (1979) ‘Evolution of chemical defence against herbivores.’ (Academic Press: New York)
Rillig MC (2004
)
Arbuscular mycorrhizae and terrestrial ecosystem processes.
Ecology Letters
7, 740–754.
|
CrossRef |
Rillig MC, Allen MF (1999
)
What is the role of arbuscular mycorrhizal fungi in plant-to-ecosystem responses to elevated atmospheric CO
2?
Mycorrhiza
9, 1–8.
|
CrossRef |
Rillig MC, Allen MF, Klironomos JN, Field CB (1998
)
Arbuscular mycorrhizal percent infection and infection intensity of
Bromus hordeaceus grown in elevated atmospheric CO
2.
Mycologia
90, 199–205.
|
CrossRef |
Rogers A, Ainsworth EA, Leakey ADB (2009
)
Will elevated carbon dioxide concentration amplify the benefits of nitrogen fixation in legumes?
Plant Physiology
151, 1009–1016.
|
CrossRef |
CAS |
PubMed |
Rosegrant MW, Cline SA (2003
)
Global food security: challenges and policies.
Science
302, 1917–1919.
|
CrossRef |
CAS |
PubMed |
Rouhier H, Read DJ (1998
)
The role of mycorrhiza in determining the response of
Plantago lanceolata to CO
2 enrichment.
New Phytologist
139, 367–373.
|
CrossRef |
Sanders IR, Streitwolf-Engel R, van der Heijden MGA, Boller T, Wiemken A (1998
)
Increased allocation to external hyphae of arbuscular mycorrhizal fungi under CO
2 enrichment.
Oecologia
117, 496–503.
|
CrossRef |
Schädler M, Roeder M, Brandl R, Matthies D (2007
)
Interacting effects of elevated CO
2, nutrient availability and plant species on a generalist invertebrate herbivore.
Global Change Biology
13, 1005–1015.
|
CrossRef |
Smith SE, Read DJ (2008) ‘Mycorrhizal symbiosis.’ (Academic Press Ltd: Cambridge, UK)
Smith SE, St John BJ, Smith FA, Nicholas DJD (1985
)
Activity of glutamine synthetase and glutamate dehydrogenase in
Trifolium subterraneum L. and
Allium cepa L.: effects of mycorrhizal infection and phosphate nutrition.
New Phytologist
99, 211–227.
|
CrossRef |
CAS |
Smith SE, Smith FA, Jakobsen I (2004
)
Functional diversity in arbuscular mycorrhizal (AM) symbioses: the contribution of the mycorrhizal P uptake pathway is not correlated with mycorrhizal responses in growth or total P uptake.
New Phytologist
162, 511–524.
|
CrossRef |
Staddon PL, Fitter AH, Graves JD (1999
)
Effect of elevated atmospheric CO
2 on mycorrhizal colonisation, external hyphal production and phosphorus inflow in
Plantago lanceolata and
Trifolium repens in association with the arbuscular mycorrhizal afungus
Glomus mosseae.
Global Change Biology
5, 347–358.
|
CrossRef |
Staddon PL, Gregersen R, Jakobsen I (2004
)
The response of two
Glomus mycorrhizal fungi and a fine endophyte to elevated atmospheric CO
2, soil warming and drought.
Global Change Biology
10, 1909–1921.
|
CrossRef |
Stiling P, Cornelissen T (2007
)
How does elevated carbon dioxide (CO
2) affect plant–herbivore interactions? A field experiment and meta-analysis of CO
2-mediated changes on plant chemistry and herbivore performance.
Global Change Biology
13, 1823–1842.
|
CrossRef |
Stitt M, Krapp A (1999
)
The molecular physiological basis for the interaction between elevated carbon dioxide and nutrients.
Plant, Cell & Environment
22, 583–621.
|
CrossRef |
CAS |
Stöcklin J, Schweizer K, Körner C (1998
)
Effects of elevated CO
2 and phosphorus addition on productivity and community composition of intact monoliths from calcareous grassland.
Oecologia
116, 50–56.
|
CrossRef |
Syvertsen JP, Graham JH (1999
)
Phosphorus supply and arbuscular mycorrhizas increase growth and net gas exchange response of two
Citrus spp. grown at elevated [CO
2].
Plant and Soil
208, 209–219.
|
CrossRef |
CAS |
Tanaka Y, Yano K (2005
)
Nitrogen delivery to maize via mycorrhizal hyphae depends on the form of N supplied.
Plant, Cell & Environment
28, 1247–1254.
|
CrossRef |
CAS |
Taub DR, Miller B, Allen H (2008
)
Effects of elevated CO
2 on the protein concentration of food crops: a meta-analysis.
Global Change Biology
14, 565–575.
|
CrossRef |
Tobar R, Azcón R, Barea JM (1994
)
Improved nitrogen uptake and transport from
15N-labelled nitrate by external hyphae of arbuscular mycorrhiz under water-stressed conditions.
New Phytologist
126, 119–122.
|
CrossRef |
Treseder KK (2004
)
A meta-analysis of mycorrhizal responses to nitrogen, phophorus, and atmospheric CO
2 in field studies.
New Phytologist
164, 347–355.
|
CrossRef |
Treseder KK, Allen MF (2000
)
Mycorrhizal fungi have a potential role in soil carbon storage under elevated CO
2 and nitrogen deposition.
New Phytologist
147, 189–200.
|
CrossRef |
CAS |
van Aarle IM, Cavagnaro TR, Smith SE, Smith FA, Dickson S (2005
)
Metabolic activity of
Glomus intraradices in
Arum- and
Paris-type arbuscular mycorrhiza colonization.
New Phytologist
166, 611–618.
|
CrossRef |
PubMed |
Veteli TO, Kuokkanen K, Julkenen-Tiitto R, Roininen H, Tahvanainen J (2002
)
Effects of elevated CO
2 and temperature on plant growth and defensive chemistry.
Global Change Biology
8, 1240–1252.
|
CrossRef |
Wand SJE, Midgley GF, Jones MH, Curtis PS (1999
)
Responses of wild C
4 and C
3 grass (Poaceae) species to elevated atmospheric CO
2 concentration: a meta-analytic test of current theories and perceptions.
Global Change Biology
5, 723–741.
|
CrossRef |
Westley J (1988
)
Mammalian cyanide detoxification with sulfane sulfur.
Ciba Foundation Symposium
140, 201–218.
|
CAS |
PubMed |
Wieser H, Manderscheid R, Erbs M, Weigel H-J (2008
)
Effects of elevated atmospheric CO
2 concentrations on the quantitative protein composition of wheat grain.
Journal of Agricultural and Food Chemistry
56, 6531–6535.
|
CrossRef |
CAS |
PubMed |
Zagrobelny M, Bak S, Møller BL (2008
)
Cyanogenesis in plants and arthropods.
Phytochemistry
69, 1457–1468.
|
CrossRef |
CAS |
PubMed |
Ziska LH, Emche SD, Johnson EL, George K, Reed DR, Sicher RC (2005
)
Alterations in the production and concentration of selected alkaloids as a function of rising atmospheric carbon dioxide and air temperature: implications for ethno-pharmacology.
Global Change Biology
11, 1798–1807.
|
CrossRef |