Physiologische Reaktionen von Kirschen-Unterlagen auf kurzzeitige Salzbelastung
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Andreu P, Arbeloa A, Lorente P, Marín JA (2011) Early detection of salt stress tolerance of Prunus rootstocks by excised root culture. HortScience 46:80–85
Aras S, Arslan E, Esitken A (2015) Biochemical and physiological responses of lemon plant under salt stress. 2nd International Conference on Sustainable Agriculture and Environment, Konya, 30 September–3 October.
Arbona V, Iglesias DJ, Jacas J, Primo-Millo E, Talon M, Gomez-Cadenas A (2005) Hydrogel substrate amendment alleviates drought effects on young citrus plants. Plant Soil 270:73–82
Banuls J, Primo-Millo E (1992) Effects of chloride and sodium on gas exchange parameters and water relations of citrus plants. Physiol Plant 86:115–123
Bolat I, Kaya C, Almaca A, Timucin S (2006) Calcium sulfate improves salinity tolerance in rootstocks of plum. J Plant Nutr 29:553–564
Clark H, Newton PCD, Barker DJ (1999) Physiological and morphological responses to elevated CO2 and a soil moisture deficit of temperate pasture species growing in an established plant community. J Exp Bot 50:233–242
Cramer GR, Epstein E, Läuchli A (1990) Effects of sodium, potassium and calcium on salt-stressed barley. I. Growth analysis. Physiol Plant 80:83–88
De Herralde F (2000) Estudio integral de las respuestas ecofisiológicas al estrés hídrico: caracterización de variedades de almendro. Doctoral thesis. Universidad de Barcelona.
El-Desouky SA, Atawia AAR (1998) Growth performance of some citrus rootstocks under saline conditions. Alex J Agric Res 43:231–254
El-Motaium R, Hu H, Brown PH (1994) The relative tolerance of six prunus rootstocks to boron and salinity. J Am Soc Hortic Sci 119(6):1169–1175
Erturk U, Sivritepe N, Yerlikaya C, Bor M, Ozdemir F, Turkan I (2007) Responses of the cherry rootstock to salinity in vitro. Biol Plant 51(3):597–600
Flexas J, Bota J, Loreto F, Cornic G, Sharkey TD (2004) Diffusive and metabolic limitations to photosynthesis under drought and salinity in C3 plants. Plant Biol (Stuttg) 6:269–279
Grattan SR, Grieve CM (1999) Salinity-mineral nutrient relations in horticultural crops. Sci Hortic 78:127–157
Karabal E, Yucel M, Oktem HA (2003) Antioxidant responses of tolerant and sensitive barley cultivars to boron toxicity. Plant Sci 164:925–930
Kaya C, Ak BE, Higgs D, Murillo-Amador B (2002) Influence of foliar-applied calcium nitrate on strawberry plants grown under salt-stressed conditions. Aust J Exp Agr 42:631–636
Liu C, Li C, Liang D, Wei Z, Zhou S, Wang Ma RF (2012) Differential expression of ion transporters and aquaporins in leaves may contribute to different salt tolerance in malus species. Plant Physiol Biochem 58:159–165
Lutts S, Kinet JM, Bouharmont J (1996) NaCl-induced senescence in leaves of rice (oryza sativa L.) cultivars differing in salinity resistance. Ann Bot 78:389–398
Maas EV (1986) Salt tolerance in plants. Appl Plant Sci 1:12–26
Massai R, Remorini D, Tattini M (2004) Gas exchange, water relations and osmotic adjustment in two scion/rootstock combinations of prunus under various salinity concentrations. Plant Soil 259(1–2):153–162
Motosugi H, Sugiura A, Tomana T (1987) Salt tolerance of various apple rootstock cultivars. J Jpn Soc Hort Sci 56:135–141 (in Japanese with English abstract)
Murkute AA, Sharma S, Singh SK (2006) Studies on salt stress tolerance of citrus rootstock genotypes with arbuscular mycorrhizal fungi. Hort Sci 33(2):70–76
Mustard J, Renault S (2004) Effects of NaCl on water relations and cell wall elasticity and composition of red‐osier dogwood (Cornus stolonifera) seedlings. Physiol Plant 121:265–271
Nazar R, Iqbal N, Masood A, Syeed S, Khan NA (2011) Understanding the significance of sulfur in improving salinity tolerance in plants. Environ Exp Bot 70:80–87
Niu X, Bressan RA, Hasegawa PM, Pardo JM (1995) Ion homeostasis in NaCl stress environments. Plant Physiol 109:735–742
Premachandra GS, Saneoka H, Fujita K, Ogata S (1992) Leaf water relations, osmotic adjustment, cell membrane stability, epicuticular wax load and growth as affected by increasing water deficits in sorghum. J Exp Bot 43:1569–1576
Romero JM, Marañón T (1994) Long-term responses of melitotus segetalis to salinity. I. Growth and partitioning. Plant Cell Environ 17:1243–1248
Ruiz D, Martínez V, Cerdá A (1997) Citrus response to salinity: growth and nutrient uptake. Tree Physiol 17(3):141–150
Ruiz-Carrasco K, Antognoni F, Coulibaly AK, Lizardi S, Covarrubias A, Martinez 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 Physiol Biochem 49:1333–1341
Shah ST, Zamir R, Ahmad J, Ali H, Lutfullah G (2007) In vitro regeneration of plantlets from seedlings explants of guava (psidium guajava L.) cv. safeda. Pak J Bot 40:1195–1200
Sotiropoulos TE, Dimassi KN, Tsirakoglou V, Therios IN (2006) Responses of two prunus rootstocks to KCl induced salinity in vitro. Biol Plant 50(3):477–480
Soylu M, Lüdders P (1988) Einfluß unterschiedlicher Na-Konzentrationen auf das vegetative Wachstum der Apfelsorte ’Golden Delicious’/Influence of different Na-concentrations on the vegetative growth of ’Golden Delicious’ apple trees. Gartenbauwissenschaft 53:253–257
Vigo C, Therios IN, Bosabalidis AM (2005) Plant growth, nutrient concentration, and leaf anatomy of olive plants irrigated with diluted seawater. J Plant Nutr 28:1001–1021
Wahome PK, Jesch HH, Grittner I (2001) Mechanisms of salt stress tolerance in two rose rootstocks: Rosa chinensis ‘Major’ and R. rubiginosa. Sci Hortic 87:207–216