Developing Crop-Specific Irrigation Management Strategies Considering Effects of Drought on Carbon Metabolism in Plants release_cnlaiudfjndhjmqljdw4faqcr4

by Silvia Aparecida, Arnoldo Rocha, Ricardo Enrique

References

NOTE: currently batch computed and may include additional references sources, or be missing recent changes, compared to entity reference list.
Fuzzy reference matching is a work in progress!
Read more about quality, completeness, and caveats in the fatcat guide.
Showing 1 - 30 of 146 references (in 146ms)
[b0]

via grobid
Aganchich, B. Wahbl, S., Loreto, F., & Centritto, M. (2009). Partial root zone drying: regulation of photosynthetic limitations and antioxidant enzymatic activities in young olive (Olea europaca) saplings. Tree Physiology, 29, 685-696.
[b1]

via fuzzy
Reactive oxygen species and antioxidants: Relationships in green cells
Ruth G. Alscher, Janet L. Donahue, Carole L. Cramer
1997   Physiologia Plantarum : An International Journal for Plant Biology
doi:10.1034/j.1399-3054.1997.1000203.x 
[b2]

via fuzzy
AOX – a functional marker for efficient cell reprogramming under stress?
Birgit Arnholdt-Schmitt, José H. Costa, Dirce Fernandes de Melo
2006   Trends in Plant Science
doi:10.1016/j.tplants.2006.05.001  pmid:16713324 
web.archive.org [PDF]
[b3]

via grobid
Asseng, S., & Hsiao TC (2000). Canopy CO 2 assimilation, energy balance, and water use efficiency of an alfalfa crop before and after cutting. Field Crops Research, 67, 191-206.
[b4]

via grobid
Atassanova, R., Leterrier, M., Gaillard, C., Agasse, A., Sagot, E., Coutos-Thévenot, P. & Delrot, S. (2003). Sugar-regulated expression of a putative hexose transport gene in grape. Plant Physiology, 131, 326-334.
[b5]

via grobid
Bartoli, C.G., Gomez, F., Gergoff, G., Gulaét, J.J. & Puntarulo, S. (2005). Up-regulation of the mitochondrial alternative oxidase pathway enhances photosynthetic electron transport under drought conditions. Journal of Experimental Botany, 56, 1269-1276.
[b6]

via fuzzy
Ascorbate Biosynthesis in Mitochondria Is Linked to the Electron Transport Chain between Complexes III and IV
Carlos G. Bartoli, Gabriela M. Pastori, Christine H. Foyer
2000   Plant Physiology
doi:10.1104/pp.123.1.335  pmcid:PMC59007  pmid:10806250 
web.archive.org [PDF]
[b7]

via grobid
Bartoli, CG, Pastori, GM & Foyer, CH (2000). Ascorbate biosynthesis in mitochondria is linked to the electron transport chain between complexes III and IV. Plant Physiology, 123, 335-343.
[b8]

via grobid
Blum, A (1998). Improving wheat grain filling under stress by stem reserve mobilization. Euphytica, 100, 77-83.
[b9]

via fuzzy
Is photosynthesis limited by decreased Rubisco activity and RuBP content under progressive water stress?
Josefina Bota, Hipolito Medrano, Jaume Flexas
2004   New Phytologist
doi:10.1111/j.1469-8137.2004.01056.x  pmid:33873761 
[b10]

via grobid
Boyer, J.S., & Westgate, M.E. (2004). Grain yields with limited water. Journal of Experimental Botany, 55, 2385-2394.
[b11]

via grobid
Bray, E.A. (1997). Plant responses to water deficit. Trends in Plant Science, 2, 48-54.
[b12]

via grobid
Brounleader, M.D., Harbone, J.B. & Dey, P.M. (1997). Carbohydrate metabolism: Primary metabolism of monosaccharides. Chapter 3. In: DEY P.M. & HARBORNE J.B. Eds. Plant Biochemistry, 111-140.
[b13]

via grobid
Chaves, M.M., Maroco, J.P., & Pereira, J.S. (2003). Understanding plant response to drought: from genes to the whole plant. Functional Plant biology, 30,239-264.
[b14]

via grobid
Chaves, M.M., & Oliveira, M.M., (2004). Mechanisms underlying plant resilience to water deficits: prospects for water-saving agriculture. Water-saving in Agriculture Special issue. Journal of Experimental Botany, 55, 2365-2384.
[b15]

via grobid
Chaves, M.M., Pereira, J.S., Rodrigues, M.L., Ricardo, C.P.P., Osório, M.L., Carvalho, I., Faria, T., & Pinheiro, C. (2002). How plants cope with water stress in the Field: photosynthesis and growth. Annals of Botany, 89, 907-916.
[b16]

via grobid
Chaves, MM, Flexas, J. & Pinheiro, C. (2009). Photosynthesis under drought and salt stress: regulation mechanisms from whole plant to cell. Annals of Botany, 103, 551-560.
[b17]

via grobid
Chaves,M.M. (1991). Effects of water deficits on carbon assimilation. Journal of Experimental Botany, 42, 1-16.
[b18]

via grobid
Chernyad'ev, LI.I. (2009). The protective action of cytokinins on the photosynthetic machinery and productivity of plants under stress (review). Applied Biochemestry and Microbiology, 45, 351-362.
[b19]

via fuzzy
Alternative oxidases in Arabidopsis: A comparative analysis of differential expression in the gene family provides new insights into function of non-phosphorylating bypasses
Rachel Clifton, A. Harvey Millar, James Whelan
2006   Biochimica et Biophysica Acta - Bioenergetics
doi:10.1016/j.bbabio.2006.03.009  pmid:16859634 
web.archive.org [PDF]
[b20]

via grobid
Conde, C., Agasse, A., Glissant, D., Tavares, R., Gerós, H.; & Delrot, S. (2006). Pathways of glucose regulation of monosaccharide transport in grape cells. Plant Physiology, 141, 1563-1577.
[b21]

via fuzzy
Drought stress inhibits photosynthesis by decreasing stomatal aperture – not by affecting ATP synthesis
Gabriel Cornic
2000   Trends in Plant Science
doi:10.1016/s1360-1385(00)01625-3 
[b22]

via grobid
Cornic, G., & Briantis, J.M. (1991). Partitioning of photosynthetic electron flow between CO 2 and O 2 reduction in a C 3 leaf (Phaseolus vulgaris L.) at different CO 2 concentration and during drought stress. Planta, 183, 178-184.
[b23]

via grobid
Davies, W.J., & Hartung, W., (2004). Has extrapolation from biochemistry to crop functioning worked to sustain plant production under water scarcity? In: Proceeding of the Fourth International Crop Science Congress, 26 September- Day, DA, Dry, IB, Soole, KL, Wiskich, JT, & Moore, AL (1991). Regulation of alternative pathway activity in plant mitochondria. Plant Physiology, 95, 948-953.
[b24]

via grobid
Dodd IC (2007). Soil moisture heterogeneity during deficit irrigation alters root-to-shoot signaling of abscisic acid. Functional Plant Biology, 34, 439-448.
[b25]

via grobid
Dodd, IC (2009). Rhizposphere manipulations to maximize 'crop per drop' during deficit irrigation. Journal of Experimental Botany, 60, 1-6.
[b26]

via grobid
Dos Santos, T.P., Lopes, C.M., Rodrigues, L., de Souza, C.R., Maroco, J.P. Pereira, J.S., Silva, J.R. and Chaves, M.M (2003). Partial rootzone drying: effects on growth and fruit quality of field-grown grapevines (Vitis vinifera L.). Functional Plant Biology, 30: 663-671.
[b27]

via grobid
Dry, P.R., Loveys, B.R., Botting, D. and During, H. (1996) Effects of partial root-zone drying on grapevine vigour, yield, composition of fruit and use of water. Proceedings of the 9 th Australian Wine Industry Technical Conference, 126-131.
[b28]

via grobid
Dry, P.R., & Loveys, B.R., (1999). Grapevine shoot growth and stomatal conductance are reduced when part of the root system is dried. Vitis, 38, 151-156.
[b29]

via grobid
Dry, P.R., Loveys, B.R., & During, H., (2000). Partial drying of rootzone of grape. I. Transient changes in shoot growth and gas exchange. Vitis 39, 3-7.
Showing 1 - 30 of 146 references  next »