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Articles

Physiological characteristics, gas exchange, and plant ion relations of quinoa to different saline groundwater depths and water salinity

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Pages 1347-1367 | Received 26 Sep 2015, Accepted 17 Jan 2016, Published online: 25 Feb 2016

References

  • Addington RN, Mitchell RJ, Oren R, Donovan LA. 2004. Stomatal sensitivity to vapor pressure deficit and its relationship to hydraulic conductance in Pinus palustris. Tree Physiol. 24:561–569.
  • Adolf VI, Jacobsen S-E, Shabala S. 2013. Salt tolerance mechanisms in quinoa (Chenopodium quinoa Willd.). Environ Exp Bot. 92:43–54.
  • Adolf VI, Shabaha S, Anderson M, Razzaghi F, Jacobsen S-E. 2012. Varietal differences of quinoa´s tolerance to saline conditions. Plant Soil. 357:117–129.
  • Agarie S, Shimodam T, Shimizum Y, Baumann K, Sunagawa H, Kondo A, Ueno O, Nakahara T, Nose A, Cushman JC. 2007. Salt tolerance, Salt accumulation and ionic homeostasis in an epidermal bladder-cell-less mutant of the common ice plant Mesembryanthemum crystallinum. J Exp Biol. 58:1957–1967.
  • Allen RG. 2005. The ASCE standardized reference evapotranspiration equation. New York (NY): ASCE Publications; p. 216.
  • Arndt SK, Arampatsis C, Foetzki A, Li X, Zeng F, Zhang X. 2004. Contrasting patterns of leaf solute accumulation and salt adaptation in four phreatophytic desert plants in a hyperarid desert with saline groundwater. J Arid Environ. 59:259–270.
  • Ayars JE, Shouse P, Lesch SM. 2009. In situ use of groundwater by alfalfa. Agric Water Manage. 96:1579–1586.
  • Azizian A, Sepaskhah AR. 2014. Maize response to water, salinity and nitrogen levels: physiological growth parameters and gas exchange. Int J Plant Prod. 8:131–162.
  • Blumwald E, Aharon GS, Apse MP. 2000. Sodium transport in plant cells. Biochim Biophys Acta. 1465:140–151.
  • Bosque Sanchez H, Lemeur R, Van Damme P, Jacobsen S-E. 2003. Ecophysiological analysis of drought and salinity stress of quinoa (Chenopodium quinoa Willd.). Food Reviews International. 19:111–119.
  • Brakez M, Brilk KE, Daoud S, Harrouni MS. 2013. Performance of Chenopodium quinoa under salt stress. In: Shahid, SA, et al., editors. Developments in soil salinity assessment and reclamation: innovative thinking and use of marginal soil and water resources in irrigated agriculture. Dordrecht: Springer; vol. 10, (32), p. 463–478.
  • Brugnoli E, Lauteri M. 1991. Effects of salinity on stomatal conductance, photosynthetic capacity, and carbon isotope discrimination of salt-tolerant (Gossypiumhirsutum L.) and salt-sensitive (Phaseolus vulgaris L.) C3 non-halophytes. Plant Physiol. 95:628–635.
  • Chapman HD, Pratt PF. 1961. Methods of analysis for soil, plants and water. USA: University of California, Division of Agricultural Sciences, CA.
  • Cocozza C, Pulvento C, Lavini A, Riccardi M, Andria R, Tognetti R. 2012. Effects of increasing salinity stress and decreasing water availability on ecophysiological traits of quinoa (Chenopodium quinoa Willd.) grown in a mediterranean- type agroecosystem. J Agron Crop Sci. 199:229–240.
  • Eisa S, Hussin S, Geissler N, Koyro HW. 2012. Effect of NaCl salinity on water relations, photosynthesis and chemical composition of quinoa (Chenopodium quinoa Willd.) as a potential cash crop halophyte. Aust J Crop Sci. 6:357–368.
  • Flowers TJ, Colmer TD. 2008. Salinity tolerance in halophytes. New Phytologist. 179:945–963.
  • Geerts S, Raes D, Garcia M, Condori O, Mamani J, Miranda R, Cusicanqui J, Taboada C, Vacher J. 2008. Could deficit irrigation be a sustainable practice for quinoa (Chenopodium quinoa Willd.) in the Southern Bolivian Altiplano? Agric Water Manage. 95:909–917.
  • Ghamarnia H, Farmandifard M. 2014. Yield production and water use efficiency of wheat (Triticum aestivum L.) cultivars under shallow groundwater use in semi-arid region. Arch Agron Soil Sci. 60:1677–1700.
  • Ghamarnia H, Gholamian M. 2013. The effect of saline shallow ground and surface water under deficit irrigation on (Carthamus tinctorius L.) in semi arid condition. Agric Water Manage. 118:29–37.
  • Gowing JW, Rose DA, Ghamarnia H. 2009. The effect of salinity on water productivity of wheat under deficit irrigation above shallow groundwater. Agric Water Manage. 96:517–524.
  • Grimes DW, Henderson DW. 1984. Developing the resource potential of a shallow water table contribution. NO. 188. Davis: California water resource center, University of California; p. 39.
  • Hariadi Y, Maradon K, Tian Y, Jacobsen S-E, Shabana S. 2011. Ionic and osmotic relations in quinoa (Chenopodium quinoa Willd.) plants grown at various salinity levels. J Expr Botany. 62:185–193.
  • Heuer B. 2006. Photosynthetic carbon metabolism of crops under salt stress. In: Pessarakli, M, editor. Handbook of photosynthesis. Boca Raton: Taylor & Francis group; p. 779–792.
  • Hutmacher RB, Ayars JE, Vail SS, Bravo AD, Dettinger D, Schoneman RA. 1996. Uptake of shallow groundwater by cotton: growth stage, groundwater salinity effects in column lysimeters. Agric Water Manage. 31:205–223.
  • Iyengar ERR, Reddy MP. 1996. Photosynthesis in highly salt tolerant plants. In: Pesserkali, M, editor. Handbook of Photosynthesis. Baten Rose, USA.: Marshal Dekar; p. 897–909.
  • Izumi Y, Uchida K, Iijima M. 2004. Crop production in successive wheat soybean rotation with no tillage practice in relation to the root system development. Plant Prod Sci. 7:329–336.
  • Jacobsen S-E, Liu F, Jensen CR. 2009. Does root sourced ABA play a role for regulation of stomata under drought in quinoa (Chenopodium quinoa Willd.). Sci Hortic. 122:281–287.
  • Jacobsen SE, Mujica A. 2003. Quinoa: an alternative crop for saline soils. J Exp Bot. 54:i25.
  • Jacobsen SE, Quispe H, Mujica A 2001. Quinoa: an alternative crop for saline soils in the Andes. In: Scientists and Farmer-Partners in Research for the 21st Century. CIP Program Report 1999–2000, pp. 403–408.
  • Jacobsen SE, Stolen O. 1993. Quinoa-morphology and phenology and prospects for its production as a new crop in Europe. Eur J Agron. 2:19–29.
  • Jensen CR, Jacobsen S-E, Andersen MN, Nun˜ez N, Andersen SD, Rasmussen L, Mogensen VO. 2000. Leaf gas exchange and water relation characteristics of field quinoa (Chenopodium quinoa Willd.) during soil drying. Eur J Agron. 13:11–25.
  • Kahlown MA, Azam M. 2002. Individual and combined effect of waterlogging and salinity on crop yields in the Indus basin. Irrig. Drain. 51P:329–338.
  • Kashiwagi J, Krishnamurthy L, Crouch JH, Serraj R. 2006. Variability of root length density and its contributions to seed yield in chickpea (Cicer arietinum L.) under terminal drought stress. Field Crop Res. 95:171–181.
  • Khan MA, Ungar IA, Showalter AM. 2000. Effects of salinity on growth, water relations and ion accumulation of the subtropical perennial halophyte, Atriplex griffithii var. Stocksii. Ann Bot. 85:225–232.
  • Koyro HW. 2006. Effect of salinity on growth, photosynthesis, water relations and solute composition of the potential cash crop halophyte Plantago coronopus (L.). Environ Exp Bot. 56(2):136–146.
  • Koyro H-W, Eisa S. 2008. Effect of salinity on composition, viability and germination of seeds of Chenopodium quinoa willd. Plant Soil. 302:79–90.
  • Liphschitz N, Waisel Y. 1982. Adaptation of plants to saline environments: salt excretion and glandular structure. In: Sen, DN, Rajpurohit, KS, editor. Tasks for vegetation science. The Hague: W. Junk Publishers; p. 197–214.
  • Liu L, Gan Y, Bueckert R, Van Rees K. 2011. Rooting systems of oilseed and pulse crops, II: vertical distribution patterns across the soil profile. Field Crops Res. 122:248–255.
  • Morales AJ, Bajgain P, Garvaer Z, Maughan PJ, Udall JA. 2011. Physiological response of Chenopodium quinoa to salt stress. Int J Plant Physiol Biochem. 3:219–232.
  • Munns R, Tester M. 2008. Mechanisms of salinity tolerance. Annu Rev Plant Biol. 59:651–681.
  • Newman EI. 1966. A method of estimating the total length of root in a sample. J Applied Ecol. 3:139–145.
  • Orcutt DM, Nilsen ET. 2000. The physiology of plants under stress. New York: John Wiley & Sons.
  • Orsini F, Accorsi M, Gianqinto G, Dinelli G, Antognoni F, Ruiz Carrasco KB, Martinez EA, Alnayef M, Marotti I, Bosi S, Biondi S. 2011. Beyond the ionic and osmosic responce to salinity in chenopodium quinoa: functional elements of successful halophytism. Funct Plant Biol. 38:818–831.
  • Perkons U, Kautz T, Uteau D, Peth S, Geier V, Thomas K, Holz KL, Athmann K, Pude R, Kopke U. 2014. Root-length densities of various annual crops following crops with contrasting root systems. Soil Till Res. 137:50–57.
  • Ranhotra GS, Gelroth JA, Glaser BK, Lorenz KJ, Johnson DL. 1993. Composition and protein nutritional quality of quinoa. Cereal Chem. 70:303–305.
  • Razzaghi F, Ahmadi SH, Adolf VI, Jensen CR, Jacobsen S-E, Andersen MN. 2011. Water relations and transpiration of quinoa (Chenopodium quinoa Willd.) under salinity and soil drying. J Agron Crop Sci. 197:348–360.
  • Razzaghi F, Jacobsen S-E, Jensen CR, Andersen MN. 2014. Ionic and photosynthetic homeostasis in quinoa challenged by salinity and drought–mechanisms of tolerance. Funct Plant Biol. 42:136–148.
  • Razzaghi F, Plauborg F, Jacobsen S-E, Jensen CR, Andersen MN. 2012. Effect of nitrogen and water availability of three soil types on yield, radiatin use efficiency and evapotranspiration in field-grown quinoa. Agric Water Manage. 109:20–29.
  • Repo-Carrasco R, Espinoza C, Jacobsen SE. 2003. Nutritional value and use of the Andean crops quinoa (Chenopodium quinoa) and kañiwa (Chenopodium pallidicaule). Food Rev Int. 19:179e189.
  • Richards LA. 1954. Diagnosis and improvement of saline and alkali soils. Handbook 60. U.S. Salinity Laboratory. Washington, D. C.: U.S.A.
  • Rosa M, Hilal M, Gonzalez JA, Prado FE. 2009. Low-temperature effect on enzyme activities involved in sucrose–starch partitioning in salt-stressed and salt acclimated cotyledons of quinoa (Chenopodium quinoa Willd.) seedlings. Plant Physiol Biochem. 47:300–307.
  • Ruffino AMC, Rosa M, Hilal M, Gonzalez JA, Prado FE. 2010. The role of cotyledon metabolism in the establishment of quinoa (Chenopodium quinoa) seedlings growing under salinity. Plant Soil. 326:213–224.
  • Ruiz-Carrasco K, Antognoni F, Coulibaly AK, Lizardi S, Covarrubias A, Martínez EA, Molina-Montenegro MA, Biondi S, Zurita-Silva A. 2011. Variation in salinity tolerance of four lowland genotypes of quinoa (Chenopodium quinoa Willd.) as assessed by growth, physiological traits, and sodium transporter gene expression. Plant Phys Biochem. 49:1333–1341.
  • Sepaskhah AR, Karimi-Goghary S. 2003. Growth and chemical composition of pistachio affected by salinities and depths of water table. Comm Soil Sci Plant Analys. 34:343–355.
  • Shabala S. 2009. Salinity and programmed cell death: unravelling mechanisms for ion specific signalling. J Exp Bot. 60:709–711.
  • Shabala S, Cuin TA. 2008. Potassium transport and plant salt tolerance. Physiol Plant. 133:651–669.
  • Shabala S, Demidchik V, Shabala L, Cuin TA, Smith SJ, Miller AJ, Davies JM, Newman IA. 2006. Extracellular calcium ameliorates NaCl induced K+ loss from Arabidopsis root and leaf cells by controlling plasma membrane K+ permeable channels. Plant Physiol. 141:1653–1665.
  • Shabani A, Sepaskhah AR, Kamgar-Haghighi AA. 2013. Growth and physiologic response of rapeseed (Brassica napus L.) to deficit irrigation, water salinity and planting method. Int J Plant Prod. 7:569–596.
  • Soppe RWO, Ayars JE. 2003. Characterizing groundwater use by safflower using weighing lysimeters. Agric Water Manage. 60:59–71.
  • Sun Y, Liu F, Bendevis M, Shabala S, Jacobsen S-E. 2014. Sensitivity of two quinoa (Chenopodium quinoa Willd.) varieties to progressive drought stress. J Agron Crop Sci. 200:12–23.
  • Talebnejad R, Sepaskhah AR. 2014. Effects of deficit irrigation and groundwater depth on root growth of direct seeding rice in a column experiment. Int J Plant Prod. 8:563–586.
  • Talebnejad R, Sepaskhah AR. 2015. Effect of different saline groundwater depths and irrigation water salinities on yield and water use of quinoa in lysimeter. Agric Water Manage. 148:177–188.
  • Topp GC, Davis JL, Annan AP. 1980. Electromagnetic determination of soil water content: Measurement in coaxial transmission lines. Water Resour Res. 16:574–582.
  • Wilson C, Read JJ, Abo KE. 2002. Effect of mixed-salt salinity on growth and ion relations of a quinoa and a wheat variety. J Plant Nutr. 25:2689–2704.
  • Yarami N, Sepaskhah AR. 2015. Physiological growth and gas exchange response of saffron (Crocus sativus L.) to irrigation water salinity, manure application and planting method. Agric Water Manage. 154:43–51.
  • Zhang J, Davies WJ. 1989. Abscisic acid produced in dehydrating roots may enable the plant to measure the water status of the soil. Plant Cell Environ. 12:73–81.
  • Zhu J-K. 2001. Plant salt tolerance. Trends Plant Sci. 6:66–71.

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