Productivity versus drought adaptation in olive leaves: Comparison of water relations in a modern versus a traditional cultivar.


Journal

Physiologia plantarum
ISSN: 1399-3054
Titre abrégé: Physiol Plant
Pays: Denmark
ID NLM: 1256322

Informations de publication

Date de publication:
Dec 2021
Historique:
received: 19 04 2021
accepted: 06 09 2021
pubmed: 10 10 2021
medline: 1 12 2021
entrez: 9 10 2021
Statut: ppublish

Résumé

The physiological traits that set the tradeoff between productivity and drought adaptation in plants are still under debate. To reveal these traits, we compared the water relations of two olive (Olea europaea) cultivars: "Barnea"-a highly productive modern cultivar; and "Souri"-a drought-adapted traditional cultivar. We hypothesized that Souri has lower hydraulic conductivity and lower hydraulic vulnerability. The hypothesis was tested at the leaf level. The soil volumetric water content (θ), stem water potential (Ψ

Identifiants

pubmed: 34625968
doi: 10.1111/ppl.13580
doi:

Substances chimiques

Water 059QF0KO0R

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

2298-2306

Informations de copyright

© 2021 Scandinavian Plant Physiology Society.

Références

Agam, N., Cohen, Y., Berni, J.A.J., Alchanatis, V., Kool, D., Dag, A. et al. (2013) An insight to the performance of crop water stress index for olive trees. Agricultural Water Management, 118, 79-86.
Angelopoulos, K., Dichio, B. & Xiloyannis, C. (1996) Inhibition of photosynthesis in olive trees (Olea europaea L.) during water stress and rewatering. Journal of Experimental Botany, 47, 1093-1100.
Attia, Z., Domec, J., Oren, R., Way, D.A. & Moshelion, M. (2015) Growth and physiological responses of isohydric and anisohydric poplars to drought. Journal of Experimental Botany, 66, 4373-4381.
Bacelar, E.A., Santos, D.L., Moutinho-Pereira, J.M., Gonçalves, B.C., Ferreira, H.F. & Correia, C.M. (2006) Immediate responses and adaptative strategies of three olive cultivars under contrasting water availability regimes: changes on structure and chemical composition of foliage and oxidative damage. Plant Science, 170, 596-605.
Barazani, O., Westberg, E., Hanin, N., Dag, A., Kerem, Z., Tugendhaft, Y. et al. (2014) A comparative analysis of genetic variation in rootstocks and scions of old olive trees-a window into the history of olive cultivation practices and past genetic variation. BMC Plant Biology, 14, 146.
Bartlett, M.K., Scoffoni, C. & Sack, L. (2012) The determinants of leaf turgor loss point and prediction of drought tolerance of species and biomes: a global meta-analysis. Ecology Letters, 15, 393-405.
Bartlett, M.K., Zhang, Y., Kreidler, N., Sun, S., Ardy, R., Cao, K. et al. (2014) Global analysis of plasticity in turgor loss point, a key drought tolerance trait. Ecology Letters, 17, 1580-1590.
Ben-Gal, A., Yermiyahu, U., Zipori, I., Presnov, E., Hanoch, E. & Dag, A. (2011) The influence of bearing cycles on olive oil production response to irrigation. Irrigation Science, 29, 253-263.
Blum, A. & Tuberosa, R. (2018) Dehydration survival of crop plants and its measurement. Journal of Experimental Botany, 69, 975-981.
Bowman, W.D. & Roberts, S.W. (1985) Seasonal changes in tissue elasticity in chaparral shrubs. Physiologia Plantarum, 65, 233-236.
Boyer, J.S. (1995) Measuring the water status of plants and soils. San Diego, CA: Academic Press.
Brodribb, T.J. & Holbrook, N.M. (2003) Stomatal closure during leaf dehydration, correlation with other leaf physiological traits. Plant Physiology, 132, 2166-2173.
Brodribb, T.J., Holbrook, N.M., Zwieniecki, M.A. & Palma, B. (2005) Leaf hydraulic capacity in ferns, conifers and angiosperms: impacts on photosynthetic maxima. New Phytologist, 165, 839-846.
Bustan, A., Dag, A., Yermiyahu, U., Erel, R., Presnov, E., Agam, N. et al. (2016) Fruit load governs transpiration of olive trees. Tree Physiology, 36, 380-391.
Chartzoulakis, K., Bosabalidis, A., Patakas, A. & Vemmos, S. (2000) Effects of water stress on water relations, gas exchange and leaf structure of olive tree. Acta Horticulturae, 537, 241-247.
Chartzoulakis, K., Patakas, A. & Bosabalidis, A. (1999) Changes in water relations, photosynthesis and leaf anatomy induced by intermittent drought in two olive cultivars. Environmental and Experimental Botany, 42, 113-120.
Cheung, Y., Tyree, M. & Dainty, J. (1975) Water relations parameters on single leaves obtained in a pressure bomb and some ecological interpretations. Canadian Journal of Botany, 53, 1342-1346.
Chimenti, C. & Hall, A. (1994) Responses to water stress of apoplastic water fraction and bulk modulus of elasticity in sunflower (Helianthus annuus L.) genotypes of contrasting capacity for osmotic adjustment. Plant and Soil, 166, 101-107.
Choat, B., Jansen, S., Brodribb, T.J., Cochard, H., Delzon, S., Bhaskar, R. et al. (2012) Global convergence in the vulnerability of forests to drought. Nature, 491, 752-755.
Clifford, S.C., Arndt, S.K., Corlett, J.E., Joshi, S., Sankhla, N., Popp, M. et al. (1998) The role of solute accumulation, osmotic adjustment and changes in cell wall elasticity in drought tolerance in Ziziphus mauritiana (Lamk.). Journal of Experimental Botany, 49, 967-977.
Dichio, B., Xiloyannis, C., Sofo, A. & Montanaro, G. (2006) Osmotic regulation in leaves and roots of olive trees during a water deficit and rewatering. Tree Physiology, 26, 179-185.
Ennajeh, M., Tounekti, T., Vadel, A.M., Khemira, H. & Cochard, H. (2008) Water relations and drought-induced embolism in olive (Olea europaea) varieties' Meski' and 'Chemlali' during severe drought. Tree Physiology, 28, 971-976.
Gleason, S.M., Westoby, M., Jansen, S., Choat, B., Hacke, U.G., Pratt, R.B. et al. (2016) Weak tradeoff between xylem safety and xylem-specific hydraulic efficiency across the world's woody plant species. New Phytologist, 209, 123-136.
Goldschmidt, E.E. & Huber, S.C. (1992) Regulation of photosynthesis by end-product accumulation in leaves of plants storing starch, sucrose, and hexose sugars. Plant Physiology, 99, 1443-1448.
Grace, J. (Ed.). (2012) Perspectives on plant competition. San Diego, CA: Elsevier.
Grijalva-Contreras, R.L., Macías-Duarte, R., López-Carvajal, A., Robles-Contreras, F., de Jesús Valenzuela-Ruiz, M. & Núñez-Ramirez, F. (2019) Preliminary evaluation of olive (Olea europaea L.) cultivars under hot and arid environment of Mexico. Asian Journal of Agricultural and Horticultural Research, 3, 1-7.
Hacke, U.G. & Sperry, J.S. (2001) Functional and ecological xylem anatomy. Perspectives in plant ecology, evolution and systematics, Vol. 4, pp. 97-115.
Hacke, U.G., Spicer, R., Schreiber, S.G. & Plavcová, L. (2017) An ecophysiological and developmental perspective on variation in vessel diameter. Plant, Cell & Environment, 40, 831-845.
Hacke, U.G., Stiller, V., Sperry, J.S., Pittermann, J. & McCulloh, K.A. (2001) Cavitation fatigue. Embolism and refilling cycles can weaken the cavitation resistance of xylem. Plant Physiology, 125, 779-786.
Hochberg, U., Degu, A., Fait, A. & Rachmilevitch, S. (2013) Near isohydric grapevine cultivar displays higher photosynthetic efficiency and photorespiration rates under drought stress as compared with near anisohydric grapevine cultivar. Physiologia Plantarum, 147, 443-453.
Hochberg, U., Degu, A., Gendler, T., Fait, A. & Rachmilevitch, S. (2015) The variability in the xylem architecture of grapevine petiole and its contribution to hydraulic differences. Functional Plant Biology, 42, 357-365.
Hubbard, R., Ryan, M., Stiller, V. & Sperry, J. (2001) Stomatal conductance and photosynthesis vary linearly with plant hydraulic conductance in ponderosa pine. Plant, Cell & Environment, 24, 113-121.
Körner, C. (2015) Paradigm shift in plant growth control. Current Opinion in Plant Biology, 25, 107-114.
Lavee, S. (2011) The revolutionary impact of introducing irrigation-intensification to the olive oil industry. Acta Horticulturae, 888, 21-30.
Lavee, S. & Wodner, M. (1991) Factors affecting the nature of oil accumulation in fruit of olive (Olea europaea L.) cultivars. Journal of Horticultural Sciences, 66, 583-591.
Li, S., Lens, F., Espino, S., Karimi, Z., Klepsch, M., Schenk, H.J. et al. (2016) Intervessel pit membrane thickness as a key determinant of embolism resistance in angiosperm xylem. IAWA Journal, 37, 152-171.
Likoswe, A. & Lawn, R. (2008) Response to terminal water deficit stress of cowpea, pigeonpea, and soybean in pure stand and in competition. Australian Journal of Agricultural Research, 59, 27-37.
Martínez-Vilalta, J., Prat, E., Oliveras, I. & Piñol, J. (2002) Xylem hydraulic properties of roots and stems of nine Mediterranean woody species. Oecologia, 133, 19-29.
McDowell, N., Pockman, W.T., Allen, C.D., Breshears, D.D., Cobb, N., Kolb, T. et al. (2008) Mechanisms of plant survival and mortality during drought: why do some plants survive while others succumb to drought? New Phytologist, 178, 719-739.
Melkonian, J.J., Wolfe, J. & Steponkus, P.L. (1982) Determination of the volumetric modulus of elasticity of wheat leaves by pressure-volume relations and the effect of drought conditioning 1. Crop Science, 22, 116-123.
Naor, A., Schneider, D., Ben-Gal, A., Zipori, I., Dag, A., Kerem, Z. et al. (2013) The effects of crop load and irrigation rate in the oil accumulation stage on oil yield and water relations of 'Koroneiki' olives. Irrigation Science, 31, 781-791.
Nardini, A. & Luglio, J. (2014) Leaf hydraulic capacity and drought vulnerability: possible tradeoffs and correlations with climate across three major biomes. Functional Ecology, 28, 810-818.
Patakas, A., Nikolaou, N., Zioziou, E., Radoglou, K. & Noitsakis, B. (2002) The role of organic solute and ion accumulation in osmotic adjustment in drought-stressed grapevines. Plant Science, 163, 361-367.
Ray, P.M., Green, P.B. & Cleland, R. (1972) Role of turgor in plant cell growth. Nature, 239(5368), 163-164.
Rodriguez-Dominguez, C.M., Murphy, M.R.C., Lucani, C. & Brodribb, T.J. (2018) Mapping xylem failure in disparate organs of whole plants reveals extreme resistance in olive roots. New Phytologist, 218, 1025-1035.
Rosales, M.A., Ocampo, E., Rodríguez-Valentín, R., Olvera-Carrillo, Y., Acosta-Gallegos, J. & Covarrubias, A.A. (2012) Physiological analysis of common bean (Phaseolus vulgaris L.) cultivars uncovers characteristics related to terminal drought resistance. Plant Physiology and Biochemistry, 56, 24-34.
Scholander, P.F., Bradstreet, E.D., Hemmingsen, E.A. & Hammel, H.T. (1965) Sap pressure in vascular plants: negative hydrostatic pressure can be measured in plants. Science, 148, 339-346.
Schoppach, R., Fleury, D., Sinclair, T.R. & Sadok, W. (2017) Transpiration sensitivity to evaporative demand across 120 years of breeding of Australian wheat cultivars. Journal of Agronomy and Crop Science, 203, 219-226.
Silber, A., Israeli, Y., Levi, M., Keinan, A., Chudi, G., Golan, A. et al. (2013) The roles of fruit sink in the regulation of gas exchange and water uptake: a case study for avocado. Agricultural Water Management, 116, 21-28.
Sinclair, T.R. & Ludlow, M.M. (1986) Influence of soil water supply on the plant water balance of four tropical grain legumes. Functional Plant Biology, 13, 329-341.
Sofo, A., Manfreda, S., Fiorentino, M., Dichio, B. & Xiloyannis, C. (2008) The olive tree: a paradigm for drought tolerance in Mediterranean climates. Hydrology and Earth System Sciences, 12, 293-301. https://doi.org/10.5194/hessd-4-2811-2007
Sperry, J.S. & Love, D.M. (2015) What plant hydraulics can tell us about responses to climate-change droughts. New Phytologist, 207, 14-27.
Tombesi, S., Nardini, A., Farinelli, D. & Palliotti, A. (2014) Relationships between stomatal behavior, xylem vulnerability to cavitation and leaf water relations in two cultivars of Vitis vinifera. Physiologia Plantarum, 152, 453-464.
Torres-Ruiz, J.M., Cochard, H., Choat, B., Jansen, S., López, R., Tomášková, I. et al. (2017) Xylem resistance to embolism: presenting a simple diagnostic test for the open vessel artefact. New Phytologist, 215, 489-499.
Torres-Ruiz, J.M., Cochard, H., Mayr, S., Beikircher, B., Diaz-Espejo, A., Rodriguez-Dominguez, C.M. et al. (2014) Vulnerability to cavitation in Olea europaea current-year shoots: further evidence of an open-vessel artifact associated with centrifuge and air-injection techniques. Physiologia Plantarum, 152, 465-474.
Trueba, S., Pan, R., Scoffoni, C., John, G.P., Davis, S.D. & Sack, L. (2019) Thresholds for leaf damage due to dehydration: declines of hydraulic function, stomatal conductance and cellular integrity precede those for photochemistry. New Phytologist, 223, 134-149.
Tugendhaft, Y., Eppel, A., Kerem, Z., Barazani, O., Ben-Gal, A., Kadereit, J.W. et al. (2016) Drought tolerance of three olive cultivars alternatively selected for rain fed or intensive cultivation. Scientia Horticulturae, 199, 158-162.
Tyree, M.T., Davis, S.D. & Cochard, H. (1994) Biophysical perspective of xylem evolution: is there a tradeoff of hydraulic efficiency for vulnerability to dysfunction? IAWA Journal, 15, 335-360.
Weissbein, S., Wiesman, Z., Ephrath, Y. & Silberbush, M. (2008) Vegetative and reproductive response of olive cultivars to moderate saline water irrigation. HortScience, 43, 320-327.

Auteurs

Oded Barzilai (O)

Institute of Soil, Water and Environmental Sciences, Volcani Center, ARO, Rishon Lezion, Israel.
R. H. Smith Institute of Plant Science and Genetics in Agriculture, Faculty of Agriculture, Food and Environment, The Hebrew University of Jerusalem, Rehovot, Israel.

May Avraham (M)

Institute of Soil, Water and Environmental Sciences, Volcani Center, ARO, Rishon Lezion, Israel.

Yonatan Sorek (Y)

Institute of Soil, Water and Environmental Sciences, Volcani Center, ARO, Rishon Lezion, Israel.
R. H. Smith Institute of Plant Science and Genetics in Agriculture, Faculty of Agriculture, Food and Environment, The Hebrew University of Jerusalem, Rehovot, Israel.

Hanita Zemach (H)

Institute of Plant Sciences, Volcani Center, ARO, Rishon Lezion, Israel.

Arnon Dag (A)

Institute of Plant Sciences, Gilat Research Center, ARO, Gilat, Israel.

Uri Hochberg (U)

Institute of Soil, Water and Environmental Sciences, Volcani Center, ARO, Rishon Lezion, Israel.

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