References
Angus JF, van Herwaarden AF (2001
)
Increasing water use and water use efficiency in dryland wheat.
Agronomy Journal
93, 290–298.
|
CrossRef |
Araus JL (2004
)
The problem of sustainable water use in the Mediterranean and research requirements for agriculture.
Annals of Applied Biology
144, 259–272.
|
CrossRef |
Araus JL, Bort J, Ceccarelli S, Grando S (1997
)
Relationship between leaf structure and carbon isotope discrimination in field grown barley.
Plant Physiology and Biochemistry
35, 533–541.
Araus JL, Amaro T, Casadesus J, Asbati A, Nachit MM (1998
)
Relationships between ash content, carbon isotope discrimination and yield in durum wheat.
Australian Journal of Plant Physiology
25, 835–842.
|
CrossRef |
Araus JL, Slafer GA, Reynolds MP, Royo C (2002
)
Plant breeding and water stress in C
3 cereals: what to breed for?
Annals of Botany
89, 925–940.
|
CrossRef |
Araus JL, Villegas D, Aparicio N, García del Moral LF, El Hani S, Rharrabti Y, Ferrio JP, Royo C (2003
)
Environmental factors determining carbon isotope discrimination and yield in durum wheat under Mediterranean conditions.
Crop Science
43, 170–180.
|
CrossRef |
Araus JL, Ferrio JP, Buxó R, Voltas J (2007
)
The historical perspective of dryland agriculture: lessons learned from 10 000 years of wheat cultivation.
Journal of Experimental Botany
58, 131–145.
|
CrossRef |
CAS |
Araus JL, Slafer GA, Royo C, Serret MD (2008
)
Breeding for yield potential and stress adaptation in cereals.
Critical Reviews in Plant Sciences
27, 377–412.
|
CrossRef |
Araus JL, Cabrera-Bosquet L, Sánchez C (2010
)
Is heterosis in maize mediated through better water use?
New Phytologist
187, 392–406.
|
CrossRef |
CAS |
Asbjornsen H, Shepherd G, Helmers M, Mora G (2008
)
Seasonal patterns in depth of water uptake under contrasting annual and perennial systems in the Corn Belt Region of the Midwestern US.
Plant and Soil
308, 69–92.
|
CrossRef |
CAS |
Bänziger M, Edmeades GO, Beck D, Bellon M (2000) ‘Breeding for drought and nitrogen stress tolerance in maize: from theory to practice.’ (CIMMYT, Mexico DF, Mexico)
Barbour MM (2007
)
Stable oxygen isotope composition of plant tissue: a review.
Functional Plant Biology
34, 83–94.
|
CrossRef |
CAS |
Barbour MM, Farquhar GD (2000
)
Relative humidity- and ABA-induced variation in carbon and oxygen isotope ratios of cotton leaves.
Plant, Cell & Environment
23, 473–485.
|
CrossRef |
CAS |
Barbour MM, Fischer RA, Sayre KD, Farquhar GD (2000
)
Oxygen isotope ratio of leaf and grain material correlates with stomatal conductance and grain yield in irrigated wheat.
Australian Journal of Plant Physiology
27, 625–637.
Barnes B, Farquhar GD, Gan K (2004
)
Modelling the isotope enrichment of leaf water.
Journal of Mathematical Biology
48, 672–702.
|
CrossRef |
CAS |
Bassin S, Werner RA, Sörgel K, Volk M, Buchmann N, Fuhrer J (2009
)
Effects of combined ozone and nitrogen deposition on the in situ properties of eleven key plant species of a subalpine pasture.
Oecologia
158, 747–756.
|
CrossRef |
Becker WA (1992) ‘Manual of quantitative genetics.’ 5th edn. (Academic Enterprises, Pullman, WA)
Blum A (2005
)
Drought resistance, water-use efficiency, and yield potential – are they compatible, dissonant, or mutually exclusive?
Australian Journal of Agricultural Research
56, 1159–1168.
|
CrossRef |
Blum A (2009
)
Effective use of water (EUW) and not water-use efficiency (WUE) is the target of crop yield improvement under drought stress.
Field Crops Research
112, 119–123.
|
CrossRef |
Bort J, Araus JL, Hazzam H, Grando S, Ceccarelli S (1998
)
Relationships between early vigour, grain yield, leaf structure and stable isotope composition in field grown barley.
Plant Physiology and Biochemistry
36, 889–897.
|
CrossRef |
CAS |
Cabrera-Bosquet L, Molero G, Bort J, Nogués S, Araus JL (2007
)
The combined effect of constant water deficit and nitrogen supply on WUE, NUE and Δ
13C in durum wheat potted plants.
Annals of Applied Biology
151, 277–289.
|
CrossRef |
CAS |
Cabrera-Bosquet L, Molero G, Nogués S, Araus JL (2009
a)
Water and nitrogen conditions affect the relationships of Δ
13C and Δ
18O with gas exchange and growth in durum wheat.
Journal of Experimental Botany
60, 1633–1644.
|
CrossRef |
CAS |
Cabrera-Bosquet L, Sanchez C, Araus J (2009
b)
Oxygen isotope enrichment (Δ
18O) reflects yield potential and drought resistance in maize.
Plant, Cell & Environment
32, 1487–1499.
|
CrossRef |
CAS |
Cabrera-Bosquet L, Sánchez C, Araus JL (2009
c)
How yield relates to ash content, Δ
13C and Δ
18O in maize grown under different water regimes.
Annals of Botany
104, 1207–1216.
|
CrossRef |
CAS |
Cabrera-Bosquet L, Albrizio R, Nogués S, Araus JL (2011
)
Dual Δ
13C/δ
18O response to water and nitrogen availability and its relationship with yield in field-grown durum wheat.
Plant, Cell & Environment
34, 418–433.
|
CrossRef |
CAS |
Cernusak LA, Winter K, Aranda J, Turner BL, Marshall JD (2007
)
Transpiration efficiency of a tropical pioneer tree (
Ficus insipida) in relation to soil fertility.
Journal of Experimental Botany
58, 3549–3566.
|
CrossRef |
CAS |
Cernusak LA, Winter K, Turner BL (2009
a)
Physiological and isotopic (δ
13C and δ
18O) responses of three tropical tree species to water and nutrient availability.
Plant, Cell & Environment
32, 1441–1455.
|
CrossRef |
CAS |
Cernusak LA, Winter K, Turner BL (2009
b)
Plant δ
15N correlates with the transpiration efficiency of nitrogen acquisition in tropical trees.
Plant Physiology
151, 1667–1676.
|
CrossRef |
CAS |
Chen J, Chang SX, Anyia AO (2011
)
Gene discovery in cereals through QTL and expression analysis in water-use efficiency measured by carbon isotope discrimination.
Plant, Cell & Environment
34, 2009–2023.
|
CrossRef |
CAS |
Condon AG, Richards RA (1992
)
Broad sense heritability and genotypes-environment interaction for carbon isotope discrimination in field-grown wheat.
Australian Journal of Agricultural Research
43, 921–934.
|
CrossRef |
Condon AG, Richards RA, Farquhar GD (1987
)
Carbon isotope discrimination is positively correlated with grain yield and dry matter production in field-grown wheat.
Crop Science
27, 996–1001.
|
CrossRef |
Condon AG, Richards RA, Rebetzke GR, Farquhar GD (2002
)
Improving intrinsic water-use efficiency and crop yield.
Crop Science
42, 122–131.
|
CrossRef |
Condon AG, Richards RA, Rebetzke GJ, Farquhar GD (2004
)
Breeding for high water-use efficiency.
Journal of Experimental Botany
55, 2447–2460.
|
CrossRef |
CAS |
Coplen TB (2008) Explanatory glossary of terms used in expression of relative isotope ratios and gas ratios. IUPAC Recommendations 2008. (International Union of Pure and Applied Chemistry Inorganic Chemistry Division, Commission on Isotopic Abundances and Atomic Weights: Research Triangle Park, NC, USA)
Coque M, Bertin P, Hirel B, Gallais A (2006
)
Genetic variation and QTLs for
15N natural abundance in a set of maize recombinant inbred lines.
Field Crops Research
97, 310–321.
|
CrossRef |
Elazab A, Molero G, Serret MD, Araus JL (2012
)
Root traits and δ
13C and δ
18O of durum wheat under different water regimes.
Functional Plant Biology
39, 379–393.
|
CrossRef |
CAS |
Elias EM, Manthey FA (2005) End products: present and future uses. In ‘Durum wheat breeding: current approaches and future strategies. Vol. 1’. (Eds C Royo, MM Nachit, N Di Fonzo, JL Araus, WH Pfeiffer, GA Slafer) pp. 63–85. (Food Products Press: New York)
Ellis RP, Forster BP, Gordon DC, Handley LL, Keith RP, Lawrence P, Meyer R, Powell W, Robinson D, Scrimgeour CM, Young G, Thomas WTB (2002
)
Phenotype/genotype associations for yield and salt tolerance in a barley mapping population segregating for two dwarfing genes.
Journal of Experimental Botany
53, 1163–1176.
|
CrossRef |
CAS |
Evans RD (2001
)
Physiological mechanism influencing plant nitrogen isotope composition.
Trends in Plant Science
6, 121–126.
|
CrossRef |
CAS |
Farquhar GD, Richards RA (1984
)
Isotopic composition of plant carbon correlates with water-use efficiency of wheat genotypes.
Australian Journal of Plant Physiology
11, 539–552.
|
CrossRef |
CAS |
Farquhar GD, Firth PM, Wetselaar R, Weir B (1980
)
On the gaseous exchange of ammonia between leaves and the environment: measurements of the ammonia compensation point.
Plant Physiology
66, 710–714.
|
CrossRef |
CAS |
Farquhar GD, Ehleringer JR, Hubick KT (1989
)
Carbon isotope discrimination and photosynthesis.
Annual Review of Plant Physiology
40, 503–537.
|
CrossRef |
CAS |
Farquhar GD, Cernusak LA, Barnes B (2007
)
Heavy water fractionation during transpiration.
Plant Physiology
143, 11–18.
|
CrossRef |
CAS |
Ferrio JP, Mateo MA, Bort J, Abdalla O, Voltas J, Araus JL (2007
)
Relationships of grain δ
13C and δ
18O with wheat phenology and yield under water-limited conditions.
Annals of Applied Biology
150, 207–215.
|
CrossRef |
CAS |
Fischer RA, Rees D, Sayre KD, Lu ZM, Condon AG, Larqué-Saavedra A (1998
)
Wheat yield progress associated with higher stomatal conductance and photosynthetic rate, and cooler canopies.
Crop Science
38, 1467–1475.
|
CrossRef |
Grams TEE, Kozovits AR, Häberle K-H, Matyssek R, Dawson TE (2007
)
Combining δ
13C and δ
18O analyses to unravel competition, CO
2 and O
3 effects on the physiological performance of different-aged trees.
Plant, Cell & Environment
30, 1023–1034.
|
CrossRef |
CAS |
Handley LL, Robinson D, Forster BP, Ellis RP, Scrimgeour CM, Gordon DC, Nero E, Raven JA (1997
)
Shoot δ
15N correlates with genotype and salt stress in barley.
Planta
201, 100–102.
|
CrossRef |
CAS |
Helliker BR, Ehleringer JR (2002
a)
Differential
18O enrichment of leaf cellulose in C
3 versus C
4 grasses.
Functional Plant Biology
29, 435–442.
|
CrossRef |
CAS |
Helliker BR, Ehleringer JR (2002
b)
Grass blades as tree-rings: environmentally induced changes in the oxygen isotope ratio of cellulose along the length of grass blades.
New Phytologist
155, 417–424.
|
CrossRef |
Högberg P (1997
)
Tansley Review no. 95.
15N natural abundance in soil-plant systems.
New Phytologist
137, 179–203.
|
CrossRef |
Holland JB (2006
)
Estimating genotypic correlations and their standard errors using multivariate restricted maximum likelihood estimation with SAS Proc Mixed.
Crop Science
46, 642–654.
|
CrossRef |
Lafitte R, Blum A, Atlin G (2003) Using secondary traits to help identify drought-tolerant genotypes. In ‘Breeding rice for drought-prone environments’. (Eds KS Fischer, RH Lafitte, S Fukai, G Atlin) pp. 37–48. (IRRI: Los Baños, The Philippines)
Lobell DB, Burke MB, Tebaldi C, Mastrandrea MD, Falcon WP, Naylor RL (2008
)
Priorizing climate change adaptation needs for food security in 2030.
Nature
319, 607–610.
Lopes M, Araus JL (2006
)
Nitrogen source and water regime effects on durum wheat photosynthesis, and stable carbon and nitrogen isotope composition.
Physiologia Plantarum
126, 435–445.
|
CrossRef |
CAS |
Lynch M, Walsh B (1998) ‘Genetics and analysis of quantitative traits.’ (Sinauer: Sunderland, MA)
Mariotti A, Martiotti F, Champigny ML, Amarger N, Moyse A (1982
)
Nitrogen isotope fractionation associated with nitrate reductase activity and uptake of nitrate by pearl millet
Pennisetum spp.
Plant Physiology
69, 880–884.
|
CrossRef |
CAS |
Nyquist WE (1991
)
Estimation of heritability and prediction of selection response in plant populations.
Critical Reviews in Plant Sciences
10, 235–322.
|
CrossRef |
Oweis T, Pala M, Ryan J (1998
)
Stabilizing rainfed wheat yields with supplemental irrigation and nitrogen in a Mediterranean climate.
Agronomy Journal
90, 672–681.
|
CrossRef |
Oweis T, Zhang H, Pala M (2000
)
Water use efficiency of rainfed and irrigated bread wheat in a Mediterranean environment.
Agronomy Journal
92, 231–238.
Passioura JB (1996
)
Drought and drought tolerance.
Plant Growth Regulation
20, 79–83.
|
CrossRef |
CAS |
Raimanová I, Haberle J (2010
)
The effects of differentiated water supply after anthesis and nitrogen fertilization on δ
15N of wheat grain.
Rapid Communications in Mass Spectrometry
24, 261–266.
|
CrossRef |
Rebetzke GJ, Condon AG, Richards RA, Farquhar GD (2002
)
Selection for reduced carbon isotope discrimination increases aerial biomass and grain yield of rainfed bread wheat.
Crop Science
42, 739–745.
|
CrossRef |
Rebetzke GJ, Richards RA, Condon AG, Farquhar GD (2006
)
Inheritance of carbon isotope discrimination in bread wheat (
Triticum aestivum L.).
Euphytica
150, 97–106.
|
CrossRef |
CAS |
Rebetzke GJ, Condon AG, Farquhar GD, Appels R, Richards RA (2008
)
Quantitative trait loci for carbon isotope discrimination are repeatable across environments and wheat mapping populations.
Theoretical and Applied Genetics
118, 123–137.
|
CrossRef |
CAS |
Robinson D, Handley LL, Scrimgeour CM (1998
)
A theory for
15N/
14N fractionation in nitrate-grown vascular plants.
Planta
205, 397–406.
|
CrossRef |
CAS |
Robinson D, Handley LL, Scrimgeour CM, Gordon C, Forster BP, Ellis RP (2000
)
Using stable isotope natural abundances (δ
15N and δ
13C) to integrate the stress responses of wild barley (
Hordeum spontaneum C Koch.) genotypes.
Journal of Experimental Botany
51, 41–50.
|
CrossRef |
CAS |
Roden JS, Ehleringer JR (1999
)
Observations of hydrogen and oxygen isotopes in leaf water confirm the Craig-Gordon model under wide-ranging environmental conditions.
Plant Physiology
120, 1165–1174.
|
CrossRef |
CAS |
Roden J, Farquhar G (2012
)
A controlled test of the dual-isotope approach for interpretation of stable carbon and oxygen isotope ratio variation in tree rings.
Tree Physiology
32, 490–503.
|
CrossRef |
CAS |
Royo R, Villegas D, García Del Moral LF, El Hani S, Aparicio N, Rharrabti Y, Araus JL (2002
)
Comparative performance of carbon isotope discrimination and canopy temperature depression as predictors of genotype differences in durum wheat yield in Spain.
Australian Journal of Agricultural Research
53, 561–569.
|
CrossRef |
Royo C, Álvaro F, Martos V, Ramdani A, Isidro J, Villegas D, García del Moral LF (2007
)
Genetic changes in durum wheat yield components and associated traits in Italian and Spanish varieties during the 20th century.
Euphytica
155, 259–270.
|
CrossRef |
Royo C, Martos V, Ramdani A, Villegas D, Rharrabti Y, García del Moral LF (2008
)
Changes in yield and carbon isotope discrimination of Italian and Spanish durum wheat during the 20th century.
Agronomy Journal
100, 352–360.
|
CrossRef |
CAS |
Sadras V (2002
)
Interaction between rainfall and nitrogen fertilisation of wheat in environments prone to terminal drought: economic and environmental risk analysis.
Field Crops Research
77, 201–215.
|
CrossRef |
Sadras VO (2004
)
Yield and water-use efficiency of water- and nitrogen-stressed wheat crops increase with degree of co-limitation.
European Journal of Agronomy
21, 455–464.
|
CrossRef |
Saurer M, Aellen K, Siegwolf R (1997
)
Correlating δ
13C and δ
18O in cellulose of trees.
Plant, Cell & Environment
20, 1543–1550.
|
CrossRef |
Scheidegger Y, Saurer M, Bahn M, Siegwolf R (2000
)
Linking stable oxygen and carbon isotopes with stomatal conductance and photosynthetic capacity: a conceptual model.
Oecologia
125, 350–357.
|
CrossRef |
Serret MD, Ortiz-Monasterio I, Pardo A, Araus JL (2008
)
The effect of urea fertilization and genotype on yield, NUE, δ
15N and δ
13C in wheat.
Annals of Applied Biology
153, 243–257.
Sheshshayee MS, Bindumadhava H, Ramesh R, Prasad TG, Lakshminarayana MR, Udayakumar M (2005
)
Oxygen isotope enrichment (Δ
18O) as a measure of timeaveraged transpiration rate.
Journal of Experimental Botany
56, 3033–3039.
|
CrossRef |
CAS |
Smart DR, Bloom AJ (2001
)
Wheat leaves emit nitrous oxide during nitrate assimilation.
Proceedings of the National Academy of Sciences of the United States of America
98, 7875–7878.
|
CrossRef |
CAS |
Tcherkez G (2011
)
Natural
15N/
14N isotope composition in C
3 leaves: are enzymatic isotope effects informative for predicting the
15N-abundance in key metabolites?
Functional Plant Biology
38, 1–12.
|
CrossRef |
CAS |
Villegas D, Aparicio N, Nachit MM, Araus JL, Royo C (2000
)
Photosynthetic and developmental traits associated with genotypic differences in durum wheat yield across the Mediterranean basin.
Australian Journal of Agricultural Research
51, 891–901.
|
CrossRef |
Vitousek PM, Shearer G, Kohl DH (1989
)
Foliar
15N natural abundances in Hawaiian rainforest: patterns and possible mechanisms.
Oecologia
78, 383–388.
|
CrossRef |
Voltas J, Romagosa I, Lafarga A, Armesto AP, Sombrero A, Araus JL (1999
)
Genotype by environment interaction for grain yield and carbon isotope discrimination of barley in Mediterranean Spain.
Australian Journal of Agricultural Research
50, 1263–1271.
|
CrossRef |
Williams DG, Coltrain JB, Lott M, English NB, Ehleringer JR (2005
)
Oxygen isotopes in cellulose identify source water for archaeological maize in the American Southwest.
Journal of Archaeological Science
32, 931–939.
|
CrossRef |
Yakir D, Deniro MJ (1990
)
Oxygen and hydrogen isotope fractionation during cellulose metabolism in
Lemna gibba L.
Plant Physiology
93, 325–332.
|
CrossRef |
CAS |
Yakir D, Deniro MJ, Gat JR (1990
)
Natural deuterium and oxygen-18 enrichment in leaf water of cotton plants grown under wet and dry conditions – evidence for water compartmentation and its dynamics.
Plant, Cell & Environment
13, 49–56.
|
CrossRef |
Yousfi S, Serret MD, Araus JL (2009
)
Shoot δ
15N gives a better reflection than ion concentration or Δ
13C of genotypic differences in the response of durum wheat to salinity.
Functional Plant Biology
36, 144–145.
|
CrossRef |
CAS |
Yousfi S, Serret MD, Voltas J, Araus JL (2010
)
Effect of salinity and water stress during the reproductive stage on growth, ion concentrations, Δ
13C and δ
15N of durum wheat and related amphiploids.
Journal of Experimental Botany
61, 3529–3542.
|
CrossRef |
CAS |
Yousfi S, Serret MD, Márquez AJ, Voltas J, Araus JL (2012
)
Combined use of δ
13C, δ
18O and δ
15N tracks nitrogen metabolism and genotypic adaptation of durum wheat to salinity and water deficit.
New Phytologist
, –
194, 230–244.
|
CrossRef |
CAS |
Zhao LJ, Xiao HL, Liu XH (2007
)
Relationships between carbon isotope discrimination and yield of spring wheat under different water and nitrogen levels.
Journal of Plant Nutrition
30, 947–963.
|
CrossRef |
CAS |