Have a personal or library account? Click to login
Seasonal Changes in the Content of Photosynthetic Pigments of Dominant Macrophytes in the Bardača Fishpond Area Cover

Seasonal Changes in the Content of Photosynthetic Pigments of Dominant Macrophytes in the Bardača Fishpond Area

Open Access
|Sep 2020

References

  1. Al-Hamdani, S. & Sirna C.B. (2008). Physiological responses of Salvinia minima to different posphorus and nitrogen concentrations. Am. Fern J., 98(2), 71−82. DOI: 10.1640/0002-8444(2008)98[71:PROSMT]2.0.CO;2.
  2. American Public Health Association (APHA) (1995). Standard methods for the examinations of water and wasterwater. Washington.
  3. Atapaththu, K.S.S., Asaeda, T., Yamamuro, M. & Kamiya H. (2017). Effects of water turbulence on plant, sediment and water quality in reed (Phragmites australis) community. Ekológia (Bratislava), 36(1), 1−9. DOI: 10.1515/eko-2017-0001.10.1515/eko-2017-0001
  4. Beck, W.A. & Redman R. (1940). Seasonal variations in the production of plant pigments. Plant Physiol., 15(1), 81−94. DOI: 10.1104/pp.15.1.81.10.1104/pp.15.1.8143825316653623
  5. Bianchini Jr., I., Cunha-Santino, M.B. & Peret A.M. (2008). Oxygen demand during mineralization of aquaticmacrophytes from an oxbow lake. Revista Brasileira de Biologia, 68(1), 61−67. DOI: 10.1590/S1519-69842008000100009.10.1590/S1519-6984200800010000918470379
  6. Bojčić, C., Debeljak, Lj., Vuković, T., Jovanović-Kršljanin, B., Apostolski, K., Ržaničanin, B., Turk, M., Volk, S., Drecun, Đ., Habeković, D., Hristić, Đ., Fijan, N., Pažur, K., Bunjevac, I. & Marošević Đ. (1982). Slatkovodno ribarstvo. Zagreb: Jugoslavenska Medicinska Naklada.
  7. Carvalho, P., Thomaz, S.M. & Bini L.M. (2003). Effects of water level, abiotic and biotic factors on bacterioplankton abundance in lagoons of a tropical floodplain (Paraná River, Brazil). Hydrobiologia, 510(1−3), 67−74. DOI: 10.1023/B:HYDR.0000008532.71152.38.10.1023/B:HYDR.0000008532.71152.38
  8. Chambers, P.A., Lacoul, P., Murphy, K.J. & Thomaz S.M. (2008). Global diversity of aquatic macrophytes in freshwater. Hydrobiologia, 595, 9−26. DOI: 10.1007/s10750-007-9154-6.10.1007/s10750-007-9154-6
  9. Dale, M.P. & Causton D.R. (1992). Use of chlorophyll a/b ratio as a bioassay for the light environment of a plant. Funct. Ecol., 6, 190−196. DOI: 10.2307/2389754.10.2307/2389754
  10. Dar, N.A., Hamid, A., Ganai, B.A., Bhat, S.U. & Pandit A.K. (2012). Primary production dynamics of two dominant macrophytes in Wular lake, a Ramsar site in Kashmir Himalaya. Ecologia Balkanica, 4(2), 77−83.
  11. Dar, N.A., Pandit, A.K. & Ganai B.A. (2013). Seasonal variation in the pigment content of dominant macrophytes from Wular lake, Kashmir Himalaya, India. Biochemistry and Pharmacology: Open Access, 2(4), 1−6. DOI: 10.4172/2167-0501.1000124.10.4172/2167-0501.1000124
  12. Dodds, W.K. (2006). Eutrophication and trophic state in rivers and streams. Limnol. Oceanogr., 51(1), 671−680. DOI: 10.4319/lo.2006.51.1_part_2.0671.10.4319/lo.2006.51.1_part_2.0671
  13. Đurić, D., Sopić, D., Trifković, A. & Jandrić B. (2004). Hidrotehnički radovi u području močvare Bardača. In Ž. Šarić, M. Stanković & D. Butler (Eds.), Život u močvari (pp. 17−27). Banja Luka: Urbanistički Zavod Republike Srpske.
  14. Horvatić, J., Kočić, A., Bučanac, D., Peršić, V. & Varga M. (2013). Preliminarna istraživanja sezonskih promjena slobodno-plivajućih i submerznih makrofita u kanalu Barbara (Baranja). Hrvatske Vode, 21(85), 215−224.
  15. Hreeb, K.K. (2017). Effect of different water temperatures on growth of aquatic plants Salvinia natans and Ceratophyllum demersum. Journal of Coastal Life Medicine, 5(1), 13−15. DOI: 10.12980/jclm.5.2017J6-213.10.12980/jclm.5.2017J6-213
  16. Ivanković, A., Velagić Habul, E. & Knezović Z. (2011). Oceanological and hydrobiological studies. Oceanological and Hydrobiological Studies, 40(3), 19−27. DOI: 10.2478/s13545-011-0025-4.10.2478/s13545-011-0025-4
  17. Jampeetong, A. & Brix H. (2009). Nitrogen nutrition of Salvinia natans: Effects of inorganic nitrogen form on growth, morphology, nitrate reductase activity and uptake kinetics of ammonium and nitrate. Aquat. Bot., 90, 67−73. DOI: 10.1016/j.aquabot.2008.06.005.10.1016/j.aquabot.2008.06.005
  18. Kitajima, K. & Hogan K.P. (2003). Increases of chlorophyll a/b ratios during acclimation of tropical woody seedlings to nitrogen limitation and high light. Plant, Cell Environ., 26, 857−865. 10.1046/j.1365-3040.2003.01017.x.10.1046/j.1365-3040.2003.01017.x
  19. Levado, E. (2001). Studies on phytoplankton diversity within the water column of two freshwater lakes – Rostherne Mere (UK) and Lake Glubokoe (Russia). PhD Thesis, University of Manchester.
  20. Lippert, I., Rolletschek, H. & Kohl J.-G. (2001). Photosynthetic pigments and efficiencies of two Phragmites australis stands in different nitrogen availabilities. Aquat. Bot., 69, 359−365. DOI: 10.1016/S0304-3770(01)00148-6.10.1016/S0304-3770(01)00148-6
  21. Lolić, S., Matavulj, M. & Maksimović T. (2012). Komparativna analiza kvaliteta vode rijeke Mature i bazena Prevlaka na Bardači (pp.121−128). Banja Luka.
  22. Lolić, S., Matavulj, M., Dekić, R. & Maksimović T. (2014). Kvalitativni i kvantitativni sastav fitoplanktona u vodi bazena Sinjak (ribnjak Bardača) (pp. 39−47). Banja Luka.
  23. Lukina, L.F. & Smirnova N.N. (1988). Fiziologija viših vodnih rastenii. Kiev: Naukova Dumka.
  24. Matavulj, M., Gajin, S. & Bokorov M. (1990). Sezonska dinamika fosfomineralizatora u vodi ribnjaka i njihov odnos sa drugim članovima mikrobiocenoze, ribnjak Futog II. In Zbornik radova II Jugoslovenskog simpozija mikrobne ekologije (pp. 219−227). Zagreb.
  25. Maksimović, T., Rončević, S. & Kukavica B. (2019). Utricularia vulgaris L. and Salvinia natans (L.) All. heavy metal (Fe, Mn, Cu, Zn and Pb) bioaccumulation specificity in the area of Bardača fishpond. Ekológia (Bratislava), 38(3), 300−313. DOI: 10.2478/eko-2019-0016.10.2478/eko-2019-0016
  26. Mészáros, I., Veres, S., Dinka, M. & Lakatos G. (2003). Variations in leaf pigmets content and photosynthetic activity of Phragmites australis in healthy and die-back reed stands of lake Fertő/Neusiedlersee. Hydrobiologia, 506, 681−686. DOI: 10.1007/BF03335350.10.1007/BF03335350
  27. Nekrasova, G.F., Ronzhina, D.A., Maleva, M.G. & P’yankov V.I. (2003). Photosynthetic metabolism and activity of carboxylating enzymes in emergent, floating, and submerged leaves of hydrophytes. Russian Journal of Plant Physiology, 50, 57−67. DOI: 10.1023/A:1021936418052.10.1023/A:1021936418052
  28. Nikolić, Lj., Pajević, S. & Ljevnaić B. (2009). Primary production dynamics of dominant hydrophytes in Lake Provala (Serbia). Central European Journal of Biology, 4(2), 250−257. DOI: 10.2478/s11535-009-0013-5.10.2478/s11535-009-0013-5
  29. Prasad, M.N.V. & Freitas H.M.D. (2003). Metal hyperaccumulation in plants - Biodiversity prospecting for phytoremediation technology. Electronic Journal of Biotechnology, 6(3), 285−321. DOI: 10.2225/vol6-issue3-fulltext-6.10.2225/vol6-issue3-fulltext-6
  30. Prasad, M.N.V., Greger, M. & Aravind P. (2006). Biogeochemmical cycling of trace elements by aquatic and wet-land plants: relevance to phytoremediation. In M.N.V. Prasad, K.S. Sajvan & R. Naidu (Eds.), Trace elements in the environment, biogeochemistry, biotechnology, and bioremediation (pp. 483−507). Boca Racon: CRC. DOI: 10.1201/9781420032048.10.1201/9781420032048
  31. Rocha, R.R.A., Thomaz, S.M., Carvalho, P. & Gomes L.C. (2009). Modelimg chlorophyll-a and dissolved oxygen concentration in tropical floodplain lakes (Paraná, River, Brazil). Braz. J. Biol., 69(Suppl. 2), 491−500. DOI: 10.1590/S1519-69842009000300005.10.1590/S1519-6984200900030000519738957
  32. Ronzhina, D.A. & P’yankov V.I. (2001). Structure of the photosynthetic apparatus in leaves of freshwater hydrophytes: 2. Quantitative characterization of leaf mesophyll and the functional activity of leaves with different degrees of submersion. Russian Journal of Plant Physiology, 48, 723−732. DOI: 10.1023/A:1012544105453.10.1023/A:1012544105453
  33. Ronzhina, D.A., Nekrasova, G.F. & P’yankov V.I. (2004). Comparative characterization of the pigment complexin emergent, floating, and submerged leaves of hydrophytes. Russian Journal of Plant Physiology, 51, 21–27. DOI: 10.1023/B:RUPP.0000011299.93961.8f.10.1023/B:RUPP.0000011299.93961.8f
  34. Saeed, T. & Sun G. (2012). A review on nitrogen and organics removal mechanisms in subsurface flow constructed wet-lands: dependency on environmental parameters, operating conditions and supporting media. J. Environ. Manag., 112, 429−448. DOI: 10.1016/j.jenvman.2012.08.011.10.1016/j.jenvman.2012.08.01123032989
  35. Sheikh, A.Q., Pandit, A.K. & Ganai B.A. (2017). Seasonal variation in chlorophyll content of some selected plant species of Yousmarg grassland ecosystem. Asian Journal of Plant Science and Research, 7(2), 33−36.
  36. Shilla, D. & Dativa J. (2008). Biomass dynamics of charophyte-dominated submerged macrophyte communities in Myall Lake, NSW, Australia. Chemistry and Ecology, 24, 367−377. DOI: 10.1080/02757540802351185.10.1080/02757540802351185
  37. Stevanović, M. & Janković M.M. (2001). Ekologija biljaka sa osnovama fiziološke ekologije biljaka. Beograd: NNK.
  38. Stevenson, R., Bothwell, M., Lowe, R. & Thorp J.H. (1996). Algal ecology: Freshwater benthic ecosystems. Academic Press.
  39. Taniguchi, G.M., Bicudo, D.C. & Senna P.A.C. (2004). Abiotic variables in littoral-limnetic gradient of an Oxbow lakeof Mogi-Guacu River floodplain, southeastern, Brazil. Braz. Arch. Biol. Technol., 47(6), 961−971. DOI: 10.1590/S1516-89132004000600016.10.1590/S1516-89132004000600016
  40. Temali, A. & Ylli A. (2017). Variations of photosynthetic pigments of the specie Najas marina related to the water quality in the opposite shore of Skadar lake. International Educational Scientific Research Journal, 3(1), 5−12.
  41. Thomaz, S.M., Pagioro, T.A., Bini, L.M., Roberto, M.C., & Rocha R.R.A. (2004). Limnology of the Upper Paraná Flood-plain habitats: patterns of spatio-temporal variations and influence of the water levels. In S.M. Thomaz, A.A. Agostinho & N.S. Hahn (Eds.), The Upper Paraná River and its floodplain: physical aspects, ecology and conservation (pp. 76−102). Leiden: Backhuys Publishers.
  42. Townsend, A.S. (2006). Hydraulic phases, persistentstratification, and phytoplankton in a tropical floodplain lake (Mary River, northern Australia). Hydrobiologia, 556(1), 163−179. DOI: 10.1007/s10750-005-0885-y.10.1007/s10750-005-0885-y
  43. Uvalle Sauceda, J.I., Gonzalez Rodriguez, H., Ramirez Lozano, R.G., Cantu Silva, I. & Gomez Meza M.V. (2008). Seasonal trends of chlorophylls a and b and carotenoids in native trees and shrubs of Northeastern Mexico. J. Biol. Sci., 8, 258−267. DOI: 10.3923/jbs.2008.258.267.10.3923/jbs.2008.258.267
  44. Wetzel, RG. (2001). Limnology: lake and river ecosystems. San Diego: Academic Press.
DOI: https://doi.org/10.2478/eko-2020-0015 | Journal eISSN: 1337-947X | Journal ISSN: 1335-342X
Language: English
Page range: 201 - 213
Published on: Sep 13, 2020
In partnership with: Paradigm Publishing Services
Publication frequency: 2 issues per year

© 2020 Tanja Maksimović, Svjetlana Lolić, Biljana Kukavica, published by Slovak Academy of Sciences, Institute of Landscape Ecology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.