Physiological behaviors and recovery responses of four Galician grapevine (Vitis vinifera L.) cultivars under water stress

Автор: Islam M.T., Berrios J.G.

Журнал: Журнал стресс-физиологии и биохимии @jspb

Статья в выпуске: 4 т.8, 2012 года.

Бесплатный доступ

Gas exchange parameters and chlorophyll fluorescence of four pot grown Galician grapevines (Vitis vinifera L. cv. Albariño, Brancellao, Godello and Treixadura) were examined under different levels of water stress in greenhouse. After extreme stress, gas exchange recovery responses were evaluated. Average ΨPD for control and stressed plants were -0.4MPa and -1.45MPa respectively. All varieties showed gradual declining of all gas exchange parameters (gs, E and A) with increasing of stress periods. Under stressed conditions, Albariño and Godello showed higher CO2 assimilation rate. At the end of stress period leaf defoliation was found in Albariño and Brancellao. Gas exchange recovery was higher for both Godello and Treixadura. A better response of auxiliary bud recovery was present in Albariño than in Brancellao. Close correlations between water stress and gas exchange parameters were found and it varies on genotype. Albariño, Godello and Treixadura followed same diurnal patterns of gas exchange rate for control and stressed plant respectively. Diurnal pattern of CO2 assimilation rate of all tested varieties followed gs and E. Only Brancellao showed treatment effect on mid-day Fv/Fm. Among four varieties photoinhibition was only found in Brancellao. At stressed condition physiological responses of grapevines were genotype depended.

Еще

Vitis vinifera l., water stress, co2 assimilation rate, chlorophyll fluorescence

Короткий адрес: https://sciup.org/14323694

IDR: 14323694

Список литературы Physiological behaviors and recovery responses of four Galician grapevine (Vitis vinifera L.) cultivars under water stress

  • Bahar, E., Carbonneau, A., Korkutal, I. (2011) The effect of extreme water stress on leaf drying limits and possibilities of recovering in three grapevine (Vitis vinifera L.) cultivars. Afr. J. Agric. Res., 6(5): 1151-1160.
  • Chaumont, M., Morotgaudry, J., Foyer, C. (1994) Seasonal and diurnal changes in photosynthesis and carbon partitioning in Vitis-vinifera leaves in vines with and without fruit. J. Exp. Bot., 45: 1235-1243.
  • Chaves, M.M., Zarrouk, O., Francisco, R., Costa, J.M., Santos, T., Regalado, A.P., Rodrigues, M.L., Lopes, C.M. (2010) Grapevine under deficit irrigation: hints from physiological and molecular data. Ann. Bot., 105: 661-676.
  • Chaves, M.M. (1991) Effect of water deficits on carbon assimilation. J. Exp. Bot., 42: 1-16.
  • Chone, X., Van Leeuwen, C., Chery, P., Ribereau-Gayon, P. (2001a) Terroir influence on water status and nitrogen status of non-irrigated Cabernet Sauvignon (Vitis vinifera): vegetative development, must and wine composition. S. Afr. J. Enol.Vitic., 22: 8-15.
  • Coggan, M. (2002) Water measurement in soil and vines, Vineyard and Winery Management. May/June, pp. 43-53.
  • Correia, M., Chaves, M., Pereira, J. (1990) Afternoon depression in photosynthesis in grapevine leaves-evidence for a high light stress effect. J. Exp. Bot., 41: 417-426.
  • Correia, M.J., Rodrigues, M.L., Osorio, M.L., Chaves, M.M. (1999) Effects of growth temperature on the response of lupin stomata to drought and abscisic acid. Aust. J. Plant Physiol., 26: 549-559.
  • Cowan, I.R.F., Farquhar, G. (1977) Stomatal function in relation to leaf metabolism and environment. Sym. Soc. Exp. Biol., 31: 471-505.
  • El-Ansary, D.O., Okamoto, G. (2007) Vine water relations and quality of 'Muscat of Alexandaria' table grapes subjected to partial root-zone drying and regulated déficit irrigation. J. Jap. Soc. Hort. Sci., 76: 13-19.
  • Escalona, J.M., Flexas, J., Medrano, H. (1999) Stomatal and non-stomatal limitations of photosynthesis under water stress in field-grown grapevines. Aust. J. Plant Physiol., 26: 421-433.
  • Escalona, J.M., Flexas, J., Medrano, H. (2002) Drought effects on wáter flow, phosynthesis and growth of potted grapevines. Vitis., 41: 57-62.
  • Epron, D., Godard, D., Cornic, G., Genty, B. (1995) Limitation of net CO2 assimilation rate by internal resistances to CO2 transfer in the leaves of two tree species (Fagus sylvatica L. and Castanea sativa Mill.). Plant Cell Environ., 18(1): 43-51.
  • Escalona, J.M., Flexas, J., Medrano, H. (1999) Stomatal and non-stomatal limitations of photosynthesis under water stress in field-grown grapevines. Aust. J. Plant Physiol., 26(5): 421 -433.
  • Flexas, J., Escalona, J.M., Medrano, H. (1999) Water stress induces different photosynthesis and electron transport rate regulation in grapevine. Plant Cell Environ., 22: 39-48.
  • Flexas, J., Escalona, J.M., Evain, S., Gulías, J., Moya, I., Osmond, C.B., Medrano, H. (2002c) Steady-state chlorophyll fluorescence (Fs) measurements as a tool to follow variations of net CO2 assimilation and stomatal conductance during water-stress in C3 plants. Phys. Plantarum., 114: 231-240.
  • Flexas, J., Bota, J., Escalona, J.M., Medrano, H. (2002a) Effect of drought on photosynthesis in field-grown grapevines: an evaluation of stomatal and mesophyll limitations. Funct. Plant Biol., 29, 461-471.
  • Flexas, J., Escalona, J.M., Medrano, H. (1998) Down regulation of photosynthesis by drought under field conditions in grapevine leaves. Aust. J. Plant Physiol., 25: 893-900.
  • Flexas, J., Bota, J., Escalona, J.M., Sampol, B., Medrano, H. (2002b) Effects of drought on photosynthesis in grapevines under field conditions: an evaluation of stomatal and mesophyll limitations. Funct. Plant Biol., 29: 461-471.
  • Hardie, W., Considine, J. (1976) Response of grapes to water-deficit stress in particular stages of development. Ame. J. Eno. Vitic., 27: 55-61.
  • Havaux, M., Canaani, O., Malkin, S. (1986) Photosynthetic responses of leaves to water stress, expressed by photoacoustic and related methods. Plant Physiol., 82: 827-839.
  • Hsiao, T.C. (1973) Plant responses to water stress. Ann. Rev. Plant Physiol., 24: 519-570.
  • Hoagland, D.R. and Arnon D.I. (1950) The water-culture method for growing plants without soil. Cal. Agri. Exp. Station Circular., 346: 1-32.
  • Jones, H.G. (2007) Monitoring plant and soil water status: established and novel methods revisited and their relevance to studies of drought tolerance. J. Exp. Bot., 58: 119-130.
  • Koundouras, S., Marinos, V., Gkoulioti, A., Kotseridis, Y., Leeuwen, C.V. (2006) Influence of vineyard location and vine water status on fruitmaturation of non-irrigated cv Agiorgitiko (Vitis vinifera L.). Effects on wine phenolic and aroma components. J. Agric. Food Chem., 54: 5077-5086.
  • Kriedemann, P.E., Smart, R.E. (1969) Effects of irradiance, temperature, and leaf water potential on photosynthesis of vine leaves. Photosynthetica., 5: 15-19.
  • Kriedemann, P.E. (1968) Photosynthesis in vine leaves as a function of light intensity, temperature, and leaf age. Vitis., 7: 213-220.
  • Larcher, W. (1987) Stress bei Pflanzen. Naturwissenschaften., 74: 158-167.
  • Leeuwen, C.V., Seguin, G. (1994) Incidences de l'alimentation en eau de la vigne, appréciée par l'état hydrique du feuillage, sur le développement de l'appareil végétatif et la maturation du raisin (Vitis vinifera variété Cabernet franc, Saint-Émilion, 1990). J. Int. Sci. Vigne Vin., 28: 81-110.
  • Long, S.P., Farage, P.K., Garcia, R.L. (1996) Measurement of leaf and canopy photosynthetic CO2 exchange in field. J. Exp. Bot., 47: 1629-1642.
  • Loveys, B. R., During, H. (1984) Diurnal changes in water relations and abscisic acid in field-grown Vitis vinifera cultivars. II. Abscisic acid changes under semi-arid conditions. New Phytol., 97: 37-47.
  • Lawlor, D.W., Cornic, G. (2002) Photosynthetic carbon assimilation and associated metabolism in relation to water deficits in higher plants. Plant Cell Environ., 25 (2): 275-294.
  • Maxwell, K., Johnson, G.N. (2000) Chlorophyll fluorescence-a practical guide. J. Exp. Bot., 51: 659-668.
  • Maroco, J.P., Pereira, J.S., Chaves, M.M. (1997) Stomatal responses to leaf-to-air vapour pressure deficit in Sahelian species. Aust. J. Plant Physiol., 24: 381-387.
  • Matthews, M., Anderson, M. (1989) Reproductive development in grape (Vitis vinifera L.): responses to seasonal water deficit. Am. J. Enol Vitic., 40: 52-60.
  • Matthews, M.A., Anderson, M. (1988) Fruit ripening in Vitis-vinifera L. responses to seasonal water deficits. Am. J. Enol. Vitic., 39: 313-320.
  • Medrano, H., Escalona, J.M., Cifre, J., Bota, J., Flexas, J. (2003) A ten-year study on the physiology of two Spanish grapevine cultivars under field conditions: effects of water availability from leaf photosynthesis to grape yield and quality. Func. Plant Biol., 30: 607-619.
  • Monteith, J.L. (1995) A reinterpretation of the stomatal response to humidity. Plant Cell Environ., 18: 357-364.
  • Ort, D.R., Oxborough, K., Wise, R.R. (1994) Depressions of photosynthesis in crops with water deficits. In'Photoinhibition of photosynthesis. From molecular mechanisms to the field.' (Eds NR Baker and JR Bowyer). 315-329. (BIOS Scientific Publishers: Oxford, UK).
  • Osmond, C.B., Grace, S.C. (1995) Perspectives of photoinhibition and photorespiration in the field: quintessential inefficiencies of the light and dark reaction of photosynthesis? J. Exp. Bot., 46: 1415-1422.
  • Patakas, A., Nikolaou, N., Zioziou, E., Radoglou, P., Noitsakis, B. (2002) The role of organic solute and ion accumulation in osmotic adjustment in drought stressed grapevines. Plant Sci., 163 (2): 361-367.
  • Patakas, A., Noitsakis, B. (2001) Leaf age effects on solute accumulation in water stressed grapevines. J. Plant Physiol., 158: 63-69.
  • Patakas, A., Noitsakis, B., Chouzouri, A. (2005) Optimization of irrigation water use in grapevines using the relationship between transpiration and plant water status. Agric. Eco. Environ., 106: 253-259.
  • Pellegrino, A., Lebon, E., Simonneau, T., Wery, J. (2005) Towards a simple indicator of water stress in grapevine (Vitis vinifera L.) based on the differential sensitivities of vegetative growth components. Aust. J. Grape Wine Res., 11: 306-315.
  • Petrie, P., Trought, M., Howell, G.S., Buchan, G.D. (2003) The effect of leaf removal and canopy height on whole-gas exchange and fruit development of Vitis vinifera L. Sauvignon Blanc. Funct. Plant Biol., 30: 711-717.
  • Poni, S., Magnanini, E., Bernizzoni, F. (2003) Degree of correlation between total light interception and whole-canopy net CO2 exchange in two grapevine growth systems. Aust. J. Grape Wine Res., 9: 2-11.
  • Palliotti, A., Silvestroni, O., Petoumenou, D., Vignaroli, S., García-Berrios, J. (2008) Evaluation of low-energy demand adaptative mechanisms in Sangiovese grapevine during droughy. J. Int. Sci. Vigne Vin., 42(1): 1-7.
  • Roiloa, S.R., Retuerto, R. (2006) Development, photosynthetic activity and habitat selection of the clonal plant Fragaria vesca growing in copper-polluted soil. Funct. Plant Biol., 33: 961-971.
  • Rana, G., Katerji, N., Introna, M., Hammami, A. (2004) Microclimate and plant water relationship of the "overhead" table grape vineyard managed with three different covering techniques. Sci. Hort., 102: 105-120.
  • Ribereau-Gayon, P., Dubourdieu, D., Donèche, B., Lonvaud, A. (1998) Traité d'oenologie: Tome 1, microbiologie et vinification. Dunod, Paris. Pp 560.
  • Schulze, E.R. (1986) Carbon dioxide and water vapor pressure response to draught in the atmosphere and in the soil. Ann. Rev. Plant Physiol., 37: 247-274.
  • Schollander, R.F., Hamell, H.T., Bradstreet, E.D., Hemmingsen, E.A. (1965) Sap pressure in vascular plants. Science., 148: 339-346.
  • Selker, J., Baer, E. (2002) An engineer's approach to irrigation management in Oregon Pinot noir. Oregon Advisory Board, OSU Winegrape Res. Prog. Rep. 2001-2002. Oregon State Univ. Agr. Exp. Sta., Corvallis.
  • Serrano, L., González-Flor, C., Gorchs, G. (2010) Assessing vineyard water status using the reflectance based Water Index. Agric. Eco. Environ., 139: 490-499.
  • avik, B. (1974) Methods of studying plant water relations. Ecol. studies 9, Springer-Verslag, Berlin and New York.
  • Smart, R. E. (1974) Photosynthesis by grapevine canopies. J. Appl. Ecol., 11: 997-1006.
  • Tardieu, F., Simmonneau, T.(1998) Variability among species of stomatal control under fluctuating soil water status and evaporative demand: modelling isohydric and anisohydric behaviours. J. Exp. Bot., 49: 419-432.
  • Tregoat, O., Leeuwen, C.V., Chone, X., Gaudillère, J.P. (2002) Étude du régime hydrique et de la nutrition azotée de la vigne par des indicateurs physiologiques. Influence sur le comportement de la vigne et la maturation du raisin. J. Int. Sci. Vigne Vin., 36: 133-142.
  • Yamane, T., Shibayama, K., Hamana, Y., Yakushiji, H. (2009) Response of container-grown gridled grapevines to short-term water-deficit stress. Am. J. Enol. Vitic., 60(1): 50-56.
Еще
Статья научная