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2017 | 16 | 1 |

Tytuł artykułu

Response of ornamental grasses cultivated under salinity stress

Autorzy

Treść / Zawartość

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
Particularly adverse growing conditions are found in urban green areas, where apart from salinity stress plants are exposed to drought stress. For this reason the aim of this study was to determine the effects of negative action and enhanced resistance to substrate salinity caused by increasing doses of NaCl in cultivation of ornamental grasses Koeleria glauca (Spreng.) DC., Sesleria caerulea (L.) Ard. and Sorghastrum nutans (L.) Nash. Recorded results will provide a contribution to a preliminary classification of analysed grass species in terms of their tolerance to substrate salinity. Sesleria caerulea and S. nutans may be considered to be halophytes, since they tolerate substrate salinity caused by a dose of 30 g NaCl·dm-3, losing max. 50% fresh matter of the aboveground parts. At this salinity level neither RWC nor total N content changed in leaves of these grasses in comparison to those of plants not watered with saline solution. It was shown that contents of K+ and Ca2+ in leaves of S. nutans increased under the influence of salinity. Koeleria glauca may be considered a salt-tolerant glycophyte, since a 50% loss of fresh matter of the aboveground parts in this grass was observed at salinity caused by the dose of 10 g NaCl·dm-3, while it also accumulated much more Na+ and Cl- in leaves than the above-mentioned species.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

16

Numer

1

Opis fizyczny

p.95-103,fig.,ref.

Twórcy

autor
  • Poznan University of Life Sciences, Poznan, Poland

Bibliografia

  • Castillo, F.J., (1996). Antioxidative protection in the inducible CAM plant Sedum album L. following the imposition of severe water stress and recovery. Oecologia, 107, 469–477.
  • Cheong, M.S., Yun, D-J. (2007). Salt-stress signaling. J. Plant Biol., 50(2), 148–155.
  • Cunningham, M.A., Snyder, E., Yonkin, D., Ross, M., Elsen, T. (2008). Accumulation of deicing salts in soils in an urban environment. Urban Ecosyst., 11, 17–31.
  • Dana, M.N. (2002). Ornamental grasses and sedges as new crops. In: Trends in new crops and new uses, Janick J., Whipkey, A. (eds.). ASHS Press, Alexandria, VA. Farooq, S., Azam, F. (2006). The use of cell membrane stability (CMS) technique to screen for salt tolerant wheat varieties. J. Plant Physiol., 163, 629–637.
  • Fay, P.A., Carlisle, J.D., Knapp, A.K., Blair, J.M., Collins, S.L. (2003). Productivity responses to altered rainfall patterns in a C4-dominated grassland. Ecos. Ecol., 137(2), 245–251.
  • Garnier, E., Shipley, B., Roumet, C., Laurent, G. (2001). A standardized protocol for the determination of specific leaf area and leaf dry matter content. Funct. Ecol., 15, 688–695.
  • Glenn, E.P. (1987). Relationship between cation accumulation and water content of salt-tolerant grasses and a sadge. Plant Cell Environ., 10, 205–212.
  • Glenn, E.P., Brown, J.J., Blumwald, E. (1999). Salt tolerance and crop potential of halophytes. Plant Sci., 18(2), 227–255.
  • Greszta, J., Gruszka, A. (2000). The influence of salts and hydrogen chloride on forests and urban green. Sylwan, 3, 33–43.
  • Howard, K.W.F., Maier, H. (2007). Road de-icing salt as a potential constraint on urban growth in the Greater Toronto Area, Canada. J. Contam. Hydrol., 91, 146–170.
  • Longstreth, D.J., Strain, B.R. (1977). Effects of salinity and illumination on photosynthesis and water balance of Spartina alterniflora Loisel. Oecologia (Berl.), 31, 191–199.
  • Maeda, Y., Nakazawa, R. (2008). Effects of the timing of calcium application on the alleviation of salt stress in the maize, tall fascue, and red canarygrass seedlings. Biol. Plant., 52(1), 153–156.
  • Munns, R., James, R.A., Läuchli, A. (2006). Approaches to increasing the salt tolerance of wheat and other cereals. J. Exp. Bot., 57, 1025–1043.
  • Nabati, J., Kafi, M., Masoumi, A., Mehrijerdi, M.Z. (2013). Effect of salinity and silicon application on photosynthetic characteristics of sorghum (Sorghum bicolor L.). Int. J. Agr. Sci., 3(4), 483–492.
  • Noaman, M.N. (2004). Effect of potassium and nitrogen fertilizers on the growth and biomass of some halophytes grown under high levels of salinity. J. Agron., 3(1), 25–30.
  • Nowosielski, O. (1974). Metody oznaczania potrzeb nawożenia. PWRiL, Warszawa. Parvaiz, A., Satyawati, S. (2008). Salt stress and phytobiochemical responses of plants-a review. Plant Soil Environ., 54, 89–99.
  • Shi, H., Quintero, F.J., Pardo, J.M., Zhu, J.K. (2002). The putative plasma membrane Na+/H+ antiporter SOS1 controls long-distance Na+ transport in plants. Plant Cell, 14, 465–477.
  • Sudhakar, CH., Lakshmi, S., Giridarakumar, S. (2001). Changes in the atioxidant enzyme afficacyin two high yielding genotypes of mulberry (Morus alba L) under NaCl salinity. Plant Sci., 161, 613–619.
  • Türkoglu, N., Erez, M.E., Battal, P. (2011). Determination of physiological responses on hyacinth (Hyacinthus orientalis) plant exposed to different salt concentrations. Afr. J. Biotechnol., 10(32), 6045–6051.
  • Vasquez, E.A., Glenn, E.P., Guntenspergen, G.R., Brown, J.J., Nelson, S.G. (2006). Salt tolerance and osmotic adjustment of Spartina alterniflora (Poaceae), and the invasive M haplotype of Phragmites australis (Poaceae) along a salinity gradient. Am. J. Bot., 93(12), 1784– 1790.
  • Warren, R.S., Brockelman, P.M. (1989). Photosynthesis, respiration and salt gland activity of Distichlis spicata in relations to soil salinity. Bot. Gaz., 150(4), 346–350.
  • Wignarajah, K., Jennings, D.H., Handley, J.F. (1975). The effect of salinity on growth of Phaseolus vulgaris L. I. Anatomical changes in the first trifoliate leaf. Ann. Bot., 39, 1029–1038.
  • Wrochna, M., Gawrońska, H., Gawroński, S. (2006). Wytwarzanie biomasy i akumulacja jonów Na+, K+, Ca2+, Mg2+, Cl- w warunkach stresu solnego, przez wybrane gatunki roślin ozdobnych. Acta Agroph., 7(3), 775– 785.
  • Wrochna, M., Małecka-Przybysz, M, Gawrońska, H. (2010). Effect of road de-icing salts with anti corrosion agents on selected plant species. Acta Sci. Pol. Hortorum Cultus, 9(4), 171–182.
  • Wu, J., Seliskar, D.M., Gallagber, J.L. (1998). Stress tolerance in the marsh plant Spartina patens: Impact of NaCl on growth and root plasma lipid composition. Physiol. Plant, 102, 307–317.
  • Xiong, L., Zhu, J.-K. (2002). Salt tolerance. In: The Arabidopsis book. Society of plant biologists, Comerville, C.R Meyerowitz, E.M. (eds.). Rockville, MD. http://www. aspb.org/publications/arabidopsis/ (access: 3.04.2016).

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

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