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Tytuł artykułu

The relationship between phytoplankton and fish in nutrient-rich shallow Lake Qarun, Egypt

Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The present study focused on the determination of the baseline data and correlations between biological and physicochemical variables, including the assessment of trophic conditions in Lake Qarun. The concentrations of nutrients were high, with the maxima usually in the east subarea (total nitrogen 6.40 mg dm-3, mineral nitrogen 2.34 mg dm-3, orthophosphates 0.22 mg dm-3). A total of 134 phytoplankton species were recorded. Bacillariophyceae and Dinophyceae co-dominated spatially and seasonally in phytoplankton assemblages. The highest phytoplankton density (935 × 104 cells dm-3) and chlorophyll a content (69.3 μg dm-3) were recorded in the east subarea of the lake, whereas the largest total and dominant fish (Mugil cephalus and Solea spp.) were in the west. Tilapia zillii and Engraulis encrasicolus were most abundant in the east and in the middle part, respectively. When phytoplankton density decreased from the east toward the west subarea, the Secchi disk depth increased. The TLI-based assessment indicated hypereutrophic waters at most sites of Lake Qarun. Statistically significant positive or negative correlations were found between the dominant fish species: T. zillii and Solea spp., and the phytoplankton density, Dinophyceae density, concentrations of TP, chlorophyll a, ammonium, nitrite and nitrate. Such correlations may be helpful to better understand how to enhance the sustainable fish production.
Słowa kluczowe
Rocznik
Strony
539--553
Opis fizyczny
Bibliogr. 66 poz., rys., tab., wykr.
Twórcy
  • Department of Hydrobiology, Inland Fisheries Institute, ul. Oczapowskiego 10, 10-719 Olsztyn, Poland
  • National Institute of Oceanography and Fisheries, Inland Water and Aquaculture Branch, 101 El Kasr Aini St., Cairo, Egypt
  • National Institute of Oceanography and Fisheries, Inland Water and Aquaculture Branch, 101 El Kasr Aini St., Cairo, Egypt
autor
  • National Institute of Oceanography and Fisheries, Inland Water and Aquaculture Branch, 101 El Kasr Aini St., Cairo, Egypt
Bibliografia
  • [1]. Abd El-Karim, M.S., Fishar M.R & Abd El-Gawad S.S. (2009). Epiphytic algae and macroinvertebrate communities of Myriophyllum spicatum Lemm. and their cascade in the littoral food web of Lake Nasser, Egypt. Global Vet. 3(3): 165-177.
  • [2]. Abdel Wahed, M.S.M., Mohamed E.A., El-Sayed M.I., M'nif A. & Sillanpää M. (2014). Geochemical modeling of evaporation process in Lake Qarun, Egypt. Journal of African Earth Sciences 97: 322-330.
  • [3]. Abdel-Malek, S.A. & Ishak M.M. (1980). Some ecological aspects of Lake Qarun, Fayum, Egypt. Part II: production of plankton and benthic organisms. Hydrobiologia 75: 201-208.
  • [4]. Abdel-Malek, S.A. (1980). Food and feeding relationship between fishes in Lake Qarun, J. Ichthyol. 20: 72-276.
  • [5]. Abdel-Moniem, A.M. (2001). Biodiversity of phytoplankton structure in Lake Qarun (El-Fayum) and its use as indicators for environmental pollution. Egypt. J. Phycol. 2: 17-31.
  • [6]. Abdel-Satar, M., Gohar M.E. & Sayed M.F. (2010). Recent environmental changes in water and sediment quality of Lake Qarun, Egypt. Journal of Fisheries and Aquatic Science 5(2): 56-69.
  • [7]. Abou El-Geit, E.N, Saad T.T., Abdo M.H. & Zaki M.S. (2013). Microbial infections among some fi shes and crustacean species during blooming phenomenon in Qaroun Lake- Egypt. Life Sci. J. 10(2): 1217-1224.
  • [8]. Abwao, J.O., Boera, P.N., Munguti, J.M., Orina, P.S. & Ogello, E.O. (2014). The potential of periphyton based aquaculture for nile tilapia (Oreochromis niloticus L.) production. a review. International Journal of Fisheries and Aquatic Studies 2(1 ): 147-152
  • [9]. Anagnostidis, K. & Komarek, J. (1988). Modern approach to the classification system of cyanophytes. 3. Oscillatoriales. Arch. Hydrobiol. Suppl. 80, 1-4 (Algological Studies 50-53): 327-472.
  • [10]. Anonymous (1995). Trends of biological parameters of Lake Qarun ecosystem. Nat. Inst. Oceano. Fish. (NIOF), Final report, submitted to CDM Company Internat. INC.
  • [11]. Boraey, F.A. (1980). Studies on the changes of some ecological factors affecting fish life in Lake Qarun, Faiyum, Egypt. Water Supply Manage. 4: 99-102.
  • [12]. Brettum, P. & Andersen T. (2005). The use of phytoplankton as indicators of water quality. NIVA-report SNO 4818-2004: 1-197.
  • [13]. Burns, N., Mc Intosh J. & Scholes P. (2005). Strategies for managing the lakes of the Rotorua District, New Zealand. Lake Reserv. Manage. 21(1): 61-72.
  • [14]. Cardona, L. & Castelló, F. (1989). Food of juveniles of Liza aurata (Risso) in the Albufera des Grau (Isla Menorca - Baleares). Bolleti de la Societat d'Historia Natural de les Balears 33: 159-168. (In Spanish).
  • [15]. Cardona, L. (2001). Non-competitive coexistence between Mediterranean grey mullet: evidence from seasonal changes in food availability, niche breadth and trophic overlap. J. Fish Biol. 59(3): 729-744.
  • [16]. Cardona, L., Torras, X., Gisbert, E. & Castelló, F. (1996). The effect of stripped grey mullet (Mugil cephalus L.) on freshwater ecosystems. Israel J. Aquacult. Bamidgeh 48: 179-185.
  • [17]. Dembowska, E.A., Napiórkowski, P., Mieszczankin, T. & Józefowicz, S. (2015). Planktonic indices in the evaluation of the ecological status and the trophic state of the longest lake in Poland. Ecol. Indic. 56, 15-22.
  • [18]. Dempster, P.W., Beveridge, M.C.M. & Baird, D.J. (1993). Herbivory in the tilapia Oreochromis niloticus: a comparison of feeding rates on phytoplankton and periphyton. J. Fish Biol. 43: 385-392.
  • [19]. Dykel, S., Kyry, G.A. & Alev, M.V. (2005). The potential of phytoplankton-based culture of tilapia (Oreochromis niloticus) in floating cages in Seyhan Dam Lake. The 7th Balkan Conference on Operational Research "BACOR 05". Constanta, May 2005, Romania, pp. 1-7.
  • [20]. El-Maghraby, A.M. & Dowidar, N.M. (1969). The occurrence of marine plankton organisms in Lake Qarun (Egypt). Commission Internationale pour l'Exploration Scientifique de la Mer Meditéranéenne, Monaco 19: 849-851
  • [21]. El-Serafy, S.S., El-Haweet, A.E.A., El-Ganiny, A.A. & El-Far, A.M. (2014). Qarun Lake fi sheries; fi shing gears, species composition and catch per unit effort. Egypt. J. Aquat. Biol. & Fish. 18(2): 39-49.
  • [22]. El-Shabrawy, G. M. & Khalifa, N. (2007). Seasonal and long-term changes of macrobenthos in Lake Qarun, Egypt, J. Egypt. Acad. Soc. Environ. Develop. 8(3): 1-15.
  • [23]. El-Shabrawy, G.M. & Dumont, H.J. (2009). The Fayum Depression and Its Lakes. In: H.J. Dumont (Ed.), The Nile: Origin, Environments. Limnology and Human Use (pp. 95-124). Springer Sciences and Business Media B.V, Netherlands.
  • [24]. El-Shabrawy, G.M. & Fishar, R.M. (1999). Zooplankton consumption and feeding habits of mullet fry in Lake Qarun, Egypt. In: The role of science in the development in Egypt society and environment, Symposium proceeding 23-24 October 1999, pp. 175-186.
  • [25]. El-Shabrawy, G.M. & Taha, O.E. (1999). Effect of grazing pressure on phytoplankton assemblage in Lake Qarun, El Fayum, Egypt. Egypt. J. Aquat. Biol. & Fish. 3: 81-92.
  • [26]. El-Shabrawy, G.M., Anufriieva, E.V., Germoush, M.O., Goher, M.E. & Shadrin, N.V. (2015). Does salinity change determine zooplankton variability in the saline Qarun Lake (Egypt)? Chin. J. Oceanol. Limn. 33(6): 1368-1377.
  • [27]. Fathi, A.A. & Flower, R.J. (2005). Water quality and phytoplankton communities in Lake Qarun (Egypt). Aquat. Sci. 67: 350-362. DOI: 10.1007/s00027-005-0777-2.
  • [28]. Fishar, M.R.A. (2000). Long-term changes (1974-1996) of benthic macroinvertebrates in Lake Qarun (Fayoum - Egypt). Egypt. J. Aquat. Biol.&Fish. 4: 61-73.
  • [29]. FishBase (2015). FishBase, R. Froese & D. Pauly (Eds) World Wide Web electronic publication. www.fishbase.org, version (2012).
  • [30]. Fouda, M. (2012). Information Sheet on Ramsar Wetlands (RIS) - 2009-2012 version, http://www.ramsar.org/ris/key_ris_ index.htm.
  • [31]. Friedland, K.D., Stock, C., Drinkwater, K.F., Link, J.S., Leaf, R.T. et al. (2012). Pathways between primary production and fisheries yields of large marine ecosystems. PLoS ONE 7(1): e28945. DOI: 10.1371/journal.pone.0028945
  • [32]. Gabr, M.H. (1998). Biological studies on Liza saliens in Lake Qarun, El-Fayum, Egypt. M. Sci. Thesis, Faculty of Sciences, Banha University, 290 pp.
  • [33]. Gad, M.Y.A. (1992). Ecological studies on the algal flora of some aquatic ecosystems in El-Fayum district. M. Sci. Thesis, Faculty of Science, Cairo University, Egypt, 222 pp.
  • [34]. Begg, M.M. (2001). Dairy farm women in the Waikato 1946-1996: Fifty years of social and structural change. Unpublished doctoral dissertation, University of Waikato, Hamilton, New Zealand.
  • [35]. GAFRD, General Authority for Fish Resources Development (2013). The 2012 Statistics Yearbook. Ministry of Agriculture Publications, Cairo, Egypt.
  • [36]. Gharib, S.M. & Abd El-Halim, A.M. (2006). Spatial variation of phytoplankton and some physic-chemical variables during the highest food season in Lake Nasser (Egypt). Egypt. J. Aquatic Res. 32(1): 246-263.
  • [37]. Guiry, M.D. & Guiry, G.M. (2016). AlgaeBase. World-wide electronic publication, National University of Ireland, Galway. http://www.algaebase.org; searched on 09 January 2016.
  • [38]. Hansen, G.J.A. & Carey, C.C. (2015). Fish and Phytoplankton Exhibit Contrasting Temporal Species Abundance Patterns in a Dynamic North Temperate Lake. PLoS ONE 10(2): e0115414. DOI: 10.1371/journal.pone.0115414.
  • [39]. Huber-Pestalozzi, G. (1961). The freshwater phytoplankton. Taxonomy and biology. 5. Chlorophyceae (green algae), the order Volvocales In A. Thienemann (Ed.), Inland waters (744 pp.). E. Schweizerbart'sche Verlasbuchhandlung, Stuttgart. (In German).
  • [40]. Huber-Pestalozzi, G. (1983). The freshwater phytoplankton. Taxonomy and biology. 7(1). Chlorophyceae (green algae), the order Chlorococcales. In A. Thienemann (Ed.), Inland waters (1044 pp.). E. Schweizerbart'sche Verlasbuchhandlung, Stuttgart. (In German).
  • [41]. Hussian, A.M., Napiórkowska-Krzebietke, A., Toufeek, M.E.F., Abd El-Monem, A.M. & Morsi H.H. (2015). Phytoplankton response to changes of physicochemical variables in Lake Nasser, Egypt. J. Elem. 20(4): 855-871. DOI: 10.5601/ jelem.2015.20.1.895.
  • [42]. Ishak, M.M., Abdel-Malek, S.A. & Shafik, M.M. (1982). Development of mullet fisheries (Mugilidae) in Lake Qarun, Egypt. Aquaculture 27: 251-260.
  • [43]. Ishak, M.M., El-Sayed, A.A. & Abdel-Razek, F.A. (1980). Bionomics of Penaeus kerathurus transplanted into Lake Qarun, Egypt. Aquaculture 21: 365-374.
  • [44]. James, A., Pitchford, J.W. & Brindley, J. (2003). The relationship between plankton blooms, the hatching of fish larvae, and recruitment. Ecol. Model. 160: 77-90.
  • [45]. Komarek, J. & Anagnostidis, K. (1986). Modern approach to the classification system of cyanophytes. 2. Chroococcales. Arch. Hydrobiol. Suppl. 73(2) (Algological Studies 43): 157-226.
  • [46]. Komarek, J. & Anagnostidis, K. (1989). Modern approach to the classification system of cyanophytes. 4. Nostocales. Arch. Hydrobiol. Suppl. 82(3) (Algological Studies 56): 247-345.
  • [47]. Komarek, J. & Anagnostidis, K. (1999). Cyanoprokaryota. 1. Chroococcales. In H. Ettl, J. Gerloff, H. Heynig & D. Mollenhauer (Eds.), The freshwater flora of Central Europe (548 pp.). Gustaw Fischer Jena-Stuttgart-Lübeck Ulm. (In German).
  • [48]. Krammer, K. & Lange-Bertalot, H. (1986). Bacillariophyceae. 1. Naviculaceae. In A. Pascher (Ed.), The freshwater flora of Central Europe (876 pp.), VEB Gustaw Fischer Verlag, Jena. (In German).
  • [49]. Krammer, K. & Lange-Bertalot, H. (1991a). Bacillariophyceae. 3. Centrales, Fragilariaceae, Eunotiaceae, In A. Pascher (Ed.), The freshwater flora of Central Europe (576 pp.). Gustaw Fischer Verlag, Stuttgart-Jena. (In German).
  • [50]. Krammer, K. & Lange-Bertalot, H. (1991b). Bacillariophyceae. 4. Achnanthaceae, critical supplement to Navicula (Lineolatae) and Gomphonema. In A. Pascher (Ed.), The freshwater flora of Central Europe (433 pp.). Gustaw Fischer Verlag, Stuttgart-Jena. (In German).
  • [51]. Krammer, K. & Lange-Bertalot, H. (1988). Bacillariophyceae. 2. Epithemiaceae, Surirellaceae. In A. Pascher (Ed.), The freshwater flora of Central Europe (596 pp.). Gustaw Fischer Verlag, Stuttgart-New York. (In German).
  • [52]. Lacerot, G., Kruk, C., Lürling, M. & Scheffer, M. (2013). The role of subtropical Zooplankton as grazers of phytoplankton under different predation levels. Freshwater Biol. 58(3): 494-503. DOI: 10.1111/fwb.12075.
  • [53]. Legaspi, K., Lau, A.Y.A., Jordan, P., Mackay, A., Mcgowan, S. et al. (2015). Establishing the impacts of freshwater aquaculture in tropical Asia: the potential role of palaeolimnology. Geography and Environment 2: 148-163 DOI: 10.1002/ geo2.13.
  • [54]. Mansour, S.A. & Sidky, M.M. (2003). Ecotoxicological Studies. The first comparative study between Lake Qarun and Wadi El-Rayan wetland (Egypt), with respect to contamination of their major components. Food Chemistry 82: 181-189.
  • [55]. Napiórkowska-Krzebietke, A. & Dunalska, J. (2015). Phytoplankton-based recovery requirement for urban lakes in the implementation of the Water Framework Directive's ecological targets. Oceanol. Hydrobiol. St. 44(1): 109-119. DOI: 10.1515/ohst-2015-0011.
  • [56]. Napiórkowska-Krzebietke, A., Stawecki, K., Pyka, J.P., Hutorowicz, J. & Zdanowski, B. (2013). Phytoplankton in relation to water quality of a mesotrophic lake. Polish J. Environ. Stud. 22(3): 793-800.
  • [57]. Napiórkowska-Krzebietke, A., Stawecki, K., Pyka, J.P., Zdanowski, B. & Zębek, E. (2016). Phytoplankton and the physicochemical background in an assessment of the ecological and trophic conditions in vendace-type lakes. J. Elem. 21(1): 159-172. DOI: 10.5601/jelem.2015.20.2.891.
  • [58]. Parparov, A., Gal, G., Hamilton, D., Kasprzak, P. & Ostapenia, A. (2010). Water Quality Assessment, Trophic Classification and Water Resources Management. Journal of Water Resource and Protection 2: 907-915.
  • [59]. Popovsky, I. & Pfiester, L.A. (1990). Dinophyceae (Dinofiagellida). In H. Ettl, J. Gerloff, H. Heynig & D. Mollenhauer (Eds.), The freshwater flora of Central Europe (272 pp.). Gustaw Fischer Verlag, Jena-Stuttgart. (In German).
  • [60]. Porter, C.B., Krost, P., Gordin, H. & Angel, D.L. (1996). Preliminary assessment of grey mullet (Mugil cephalus) as a forager of organically enriched sediments below marine fish farms. Israel J. Aquacult. Bamidgeh 48: 47-55.
  • [61]. Reid, P.C., Battle, E.J.V., Batten, S.D. & Brander, K.M. (2000). Impacts of fisheries on plankton community structure. ICES Journal of Marine Science, 57: 495-502.
  • [62]. Sabae, S.Z. & Rabeh, S.A. (2000). Bacterial indices of sewage pollution in Lake Qarun, El-Fayoum, Egypt. Egypt. J. Aqua. Biol. Fish. 4: 103-116.
  • [63]. Samy-Kamal, M. (2015). Status of fisheries in Egypt: refiections on past trends and management challenges. Rev. Fish. Biol. Fisheries 25: 631-649. DOI: 10.1007/s11160-015-9404-z.
  • [64]. Shaaban, A.S., Badawi, A.A. & El-Awamry, A.A. (1985). Studies on the diatoms of Bahr Youssef Irrigated canal and its branches in El-Fayum depression (ARE). Moshtohor Annuals of Agriculture Science 24: 7-33.
  • [65]. Torras, X., Cardona, L. & Gisbert, E. (2000). Cascading effects of fiathead grey mullet Mugil cephalus in freshwater eutrophic microcosmos. Hydrobiologia 429: 49-57.
  • [66]. Whitehead, P.J., Bauchot, M.L., Hureau, J.C., Nielsen, J. & Tortonese, E. (1986). Fishes of the North-eastern Atlantic and the Mediterranean. Vol. II. UNESCO. Fish. N-e. Atl. and Mediterranean: 517-1007.
Uwagi
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-3d0d935d-bc8e-4798-9021-9a89e72e486f
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