Hort. Sci. (Prague), 2012, 39(4):188-194 | DOI: 10.17221/167/2011-HORTSCI
The effect of salinity and high boron on growth, photosynthetic activity and mineral contents of two ornamental shrubs
- 1 Department of Plant Production, Technical University of Cartagena, Cartagena, Spain
- 2 Sustainable Horticulture in Arid Zone Group, CEBAS-Technical University of Cartagena, Cartagena, Spain
- 3 CEBAS-Spanish National Research Council (CSIC), Murcia, Spain
Simultaneous salinity and boron (B) excess often occur due to irrigation with water containing high levels of salts, including B. The effects of excess of NaCl and B in the nutrient solution on some agronomical and physiological parameters of Viburnum tinus (laurustinus) and Metrosideros excelsa (metrosideros) were studied. Potted plants were grown in a factorial combination of B (1 and 6 mg/l) and NaCl (2 and 6 dS/m). B toxicity (6 mg/l) caused tip/edge burn in the lower leaves of laurustinus, while these symptoms were absent in metrosideros. Toxicity by B reduced dry biomass in the two species, particularly the aerial part in metrosideros and the roots in laurustinus. Metrosideros accumulated a similar content of B in all leaves, while the laurustinus tended to accumulate more B in the lower leaves. The leaf B content in laurustinus was reduced by salinity to a greater extent than in metrosideros; however, this was not sufficient to prevent injuries to the laurustinus photosynthetic system.
Keywords: boron toxicity; NaCl; laurustinus; metrosideros; chlorophyll fluorescence
Published: December 31, 2012 Show citation
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References
- Alpaslan M., Gunes A., 2001. Interactive effects of boron salinity stress on the growth membrane permeability and mineral composition of tomato and cucumber plants. Plant Soil, 236: 123-128.
Go to original source...
- Azza A., Fatma E., Favahat M., 2007. Responses of ornamental plants woody trees to salinity world. Journal of Agricultural Science, 3: 386-395.
- Bastías E., Alcaraz-López C., Bonilla I., MartínezBallesta M.C., Bolaños L., Carvajal M., 2010. Interactions between salinity and boron toxicity in tomato plants involve apoplastic calcium. Journal of Plant Physiology, 167: 54-60.
Go to original source...
Go to PubMed...
- Brown P.H., Shelp B.J., 1997. Boron mobility in plants. Plant Soil, 193: 85-101.
Go to original source...
- Brown P.H., Hu H., Roberts W.G., 1998. Redefining boron toxicity symptoms in some ornamentals. Available at http://slosson.ucdavis.edu/newsletters/Brown_199829071.pdf
- Cervilla L.M., Rosales M.A. Rubio-Wilhelmi M.M., Sanchez-Rodriguez E., Blasco B., Rios J.J., Romero L., Ruiz J.M., 2009. Involvement of lignification and membrane permeability in the tomato root response to boron toxicity. Plant Science, 176: 545-552.
Go to original source...
Go to PubMed...
- Edelstein M., Ben-Hur M., Cohen R., Burger Y., Ravina I., 2005. Boron salinity effects on grafted and non-grafted melon plants. Plant Soil, 269: 273-284.
Go to original source...
- Flowers M.D., Fiscus E.L., Burkey K.O., Booker F.L., Dubois J.J., 2007. Photosynthesis chlorophyll fluorescence and yield of snap bean Phasolus vulgaris L. genotypes differing in sensitivity to ozone. Environmental and Experimental Botany, 61: 190-198.
Go to original source...
- Frey M.J., Andrews J.R., Oxborough K., Blowers D.A., Baker N.R., 1998. Relationship between CO2 assimilation, photosynthetic electron transport, and active O2 metabolism in leaves of maize in the field during periods of low temperature. Plant Physiology, 116: 571-580.
Go to original source...
Go to PubMed...
- Grattan S.R., Grieve C.M., Poss J.A., Smith T.E., Suarez D.L., 2005. Does salinity reduce boron's toxic effect in broccoli? HortScience, 40: 1075.
Go to original source...
- Maxwell K., Johnson G.N., 2000. Chlorophyll fluorescence - a practical guide. Journal of Experimental Botany, 51: 659-668.
Go to original source...
- Miralles J., Nortes P., Sánchez-Blanco M.J., MartínezSánchez J.J., Bañón S., 2009. Above ground and pot-inpot production systems in Myrtus communis. Transactions of the ASABE, 52: 93-101.
Go to original source...
- Nable R.O., Banuelos G.S., Paull J.G., 1997. Boron toxicity. Plant Soil, 198: 181-198.
Go to original source...
- Pereira W.E., De Siqueira D.L., Martínez C.A., Puiatti M., 2000. Gas exchange chlorophyll fluorescence in four citrus rootstocks under aluminum stress. Journal of Plant Physiology, 157: 513-520.
Go to original source...
- Takano J., Miwa K., Fujiwara T., 2008. Boron transport mechanisms: collaboration of channels and transporters. Trends in Plant Science, 13: 451-445.
Go to original source...
Go to PubMed...
- Wu L., Dodge L., 2005. Landscape Salt Tolerance Selection Guide for Recycled Water Irrigation. Davis, University of California, Department of Plant Sciences.
- Yermiyahu U., Ben-Gal A., Keren R., Reid R.J., 2008. Combined effect of salinity excess boron on plant growth yield. Plant Soil, 304: 73-87.
Go to original source...
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