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Impact of Water Quality on Ecosystems of the Nile River

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Part of the book series: The Handbook of Environmental Chemistry ((HEC,volume 56))

Abstract

The Nile River is the most important freshwater resource for life and the main source for drinking and irrigation along the basin from its origin until its estuary in Northern Egypt. In order to secure water from African countries located on the Nile River, the sustainable use of water and maintenance of its good quality is a fundamental objective. The pollution status of the water of the Nile River is an important indicator of water quality. In this chapter, the different pollutants of the Nile River are discussed in relation to the biotic and abiotic factors that affect water quality and the aquatic ecosystem. Human activities and increase in population have had a large impact on water quality, for example, through discharge of treated and untreated sewage, manufacturing, mining, construction, agricultural wastes, and transportation and oil spills. Other toxic substances which can be secreted by certain types of algae and cyanobacteria can affect the water quality and are expressed by deterioration in color and taste of water. The Nile River in Egypt is considered the principal artery of life in Egypt, and its water quality is characterized by high nutrient concentrations such as nitrates, nitrite, ammonia, nitrogen, phosphates, sulfates, and silicates. Heavy metals from industrial wastewater and other sources may affect the distribution and growth of some undesired microorganisms. Heavy metals also affect the aquatic organisms especially fish which affects the human health. The Nile River is subjected to different organic pollution levels from human activities. These organic pollutants may derive from industrial, agricultural, or domestic wastewaters in the Delta region where the industrial and agricultural activity increase due to the increase of population. The industrial wastewater contains organic matter, suspended materials, heavy metals, as well as oils and other pollutants which include chemicals, fertilizers, insecticides, sugar, aluminum, steel, soap and paper, and oil spills from navigation and other activities. The water quality assessment methods as well as water characteristics are discussed. The effect of fish cages and fish farming on the water quality and freshwater aquatic ecosystem of the Nile River is also discussed in relation to pollutants secreted by the fish and the feed. Monitoring the Nile River water regularly and continuously can help to achieve an understanding of how this system functions which in turn can help to identify the sources and fates of contaminants to inform how to keep the water quality within safe limits for different uses.

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References

  1. https://www.mtholyoke.edu/~emwether/worldpolitics/images/nile-basin-map.gif

  2. Zaghloul S, Elwan H (2011) Water quality deterioration of middle Nile delta due to urbanization expansion, Egypt. In: 15th international water technology conference, Alex., Egypt

    Google Scholar 

  3. Chapman D, Chapman DE (eds) (1996) Water quality assessments. A guide to the use of Biota, sediments and water in environmental monitoring, 2nd edn. Chapman and Hall, London

    Google Scholar 

  4. Mapfumo E, Willms W, Chanasyk D (2002) Water quality of surface runoff from grazed fescue grassland watershed in Alberta. Water Q Res J Canada 37(3):543–562

    CAS  Google Scholar 

  5. Ezzat SM, Mahdy HM, Abo-State MA (2012) Water quality assessment of River Nile at Rosetta branch: impact of drains discharge. Middle East J Sci Res 12(4):413–423

    CAS  Google Scholar 

  6. Radwan M (2005) Evaluation of different water quality parameters for the Nile river and the different drains. In: Ninth international water technology conference, IWTC9 Sharm El-Sheikh, Egypt, pp 1293–1303

    Google Scholar 

  7. Canadian Council of Ministers of the Environment (CCME) (2001) Canadian water quality guidelines for the protection of aquatic life: CCME Water Quality Index 1.0, Technical Report. In: Canadian environmental quality guidelines, 1999, Canadian Council of Ministers of the Environment, Winnipeg

    Google Scholar 

  8. Smith RL (1990) Ecology and field biology, 4th edn. Harper Collins, New York

    Google Scholar 

  9. Murdoch T (ed) (1991) Streamkeeper’s field guide: watershed inventory and stream monitoring methods. Adopt-a-Stream Foundation, Lewiston

    Google Scholar 

  10. Greenberg AE (ed) (1995) Standard methods for the examination of water and wastewater, 19th edn

    Google Scholar 

  11. Edberg SC, Rice EW, Karlin RJ, Allen MJ (2000) Escherichia coli: the best biological drinking water indicator for public health protection. J Appl Microbiol Symp Suppl 88:106S–116S

    Article  Google Scholar 

  12. Ali EM, Shabaan-Dessouki SA, Soliman AR, El Shenawy AS (2014) Characterization of chemical water quality in the Nile River, Egypt. Int J Pure Appl Biosci 2(3):35–53

    Google Scholar 

  13. Omer AAM (2003) Variability and speciation of heavy metals in surficial sediments from the River Nile, Egypt: assessment of the anthropogenic impact. In: Third international conference on geology of Africa, Assiut-Egypt, 7–9 December 2003, pp 1–19

    Google Scholar 

  14. Sallam AA, Ibrahim MS, Nasr IN (2006) Monitoring of organochlorine and organophosphorous residue in sediments of River Nile, Egypt. J Agric Sci Mansoura Univ 31(4):2451–2469

    Google Scholar 

  15. Zidan ZH, Gupta G, Abdel-Megeed MI, Mohamed KA, Bayoumi AE (2001) Monitoring of pesticide residues and metals water and soil system in industrial and agricultural areas at Kalubia Governorate, Egypt. In: The first conference of the central agriculture, Pesticide Laboratory, pp 119–138

    Google Scholar 

  16. Abbassy MS, Ibrahim HZ, Abdel-Kader HM (2003) Persistent organochlorine pollutants in the aquatic ecosystem of Lake Manzullo. Egypt Bull Environ Contam Toxicol 70:1158–1164

    Article  CAS  Google Scholar 

  17. El-Tras WF, El-Kady NN, Tayel AA (2011) Infants exposure to aflatoxin M1 as a novel foodborne zoonoses. Food Chem Toxicol 49:2816–2819

    Article  CAS  Google Scholar 

  18. Wahaab RI, Badawy MI (2004) Water quality assessment of the river Nile system: an overview. Biomed Environ Sci 17:87–100

    Google Scholar 

  19. Harris J, Abdel Nasser G (1995) Assessment of water quality in Egypt. National Water Quality Conservation Unit, PRIDE

    Google Scholar 

  20. EEAA (1994) Industrial wastewater pollution abatement in Kafr El-Zayat, Pre-Feasibility Study, Technical Cooperation Office for the Environment

    Google Scholar 

  21. Drainage Research Institute (1995) Reuse of drainage water in the Nile delta, monitoring, modeling and analysis. Final Report. NWRC, DRI, Cairo

    Google Scholar 

  22. Osman AG, Kloas W (2010) Water quality and heavy metal monitoring in water, sediments, and tissues of the African Catfish Clarias gariepinus (Burchell, 1822) from the River Nile. Egypt J Environ Protect 1:389–400

    Article  CAS  Google Scholar 

  23. Tayel S, Yacoub AM, Mahmoud S (2008) Histopathological and haematological responses to freshwater pollution in the Nile Catfish Clarias Gariepinus. J Egpyt Acad Soc Environ Develop 9:43–60

    Google Scholar 

  24. Hayton BM (1990) Rate-limiting barriers to xenobiotic uptake by the gill. Environ Toxicol Chem 9:151–157

    Article  CAS  Google Scholar 

  25. Ikem A, Egiebor N, Nyavor K (1990) Trace elements in water, fish and sediments from Tuskegee Lake, Southeastern USA. Water Air Soil Pollut 149:51–75

    Article  Google Scholar 

  26. Gaber HS, El-Kasheif MA, Ibrahim SA, Authman MN (2013) Effect of water pollution in El-Rahawy drainage canal on hematology and organs of freshwater fish. World Appl Sci J 21(3):329–341

    CAS  Google Scholar 

  27. Anwar WA (2003) Environmental health in Egypt. Int J Hygiene Environ Health 206:339–350

    Article  CAS  Google Scholar 

  28. Mohamed M, Osman M, Potter T, Levin R (1998) Lead and Cadmium in Nile River water and finished drinking water in greater Cairo, Egypt. Environ Int 24:767–772

    Article  CAS  Google Scholar 

  29. Amer AS, AbdelGawad HA (2012) Rapid bio-indicators assessment of macrobiotic pollution on aquatic environment. Int Water Technol J 2(3):196–206

    Google Scholar 

  30. El Bouraie MM, El Barbary AA, Yehia MM, Eman A, Motawea EA (2010) Heavy metal concentrations in surface river water and bed sediments at Nile Delta in Egypt. Suo 61(1):1–12

    Google Scholar 

  31. Abdel-Aal SHT, Shahin RR, Abdel-Hamid MA, Abdeltawa MM (1988) Impact of liquid wastes of industrial complex at Helwan on water quality of both Nile and canal streams. Egypt J Soil Sci 28:421–432

    Google Scholar 

  32. Bakhiet HHA (2015) Determination of heavy metals in fish tissues and water from White Nile Khartoum City – Sudan. J Environ Protect Sustainable Dev 1(3):178–181

    Google Scholar 

  33. Abu-Zeid MA (1991) Egypt’s water resource management and policies, pp 5–45

    Google Scholar 

  34. El-Moutassem M (1994) Water problems in Egypt, p 34

    Google Scholar 

  35. Ewida AY (2014) Oil spills: impact on water quality and microbial community on the Nile River, Egypt. Int J Environ 3(4):192–198

    Google Scholar 

  36. El-Sayed M, Ouf EA (2009) Studies on river Nile aquatic environment II. Organic pollutants. Am Eurasian J Agric Environ Sci 5(2):159–170

    CAS  Google Scholar 

  37. Loganathan BG, Kannan K (1994) Global organochlorine contamination trends: an overview. Ambio 23:187–191

    Google Scholar 

  38. GESAMP (1989) The atmospheric input of trace species to the world ocean. GESAMP, Reports and studies, No. 38

    Google Scholar 

  39. Dunne T, Leopold LB (1978) Water in environmental planning. W.H. Freeman and Company, New York

    Google Scholar 

  40. El-Gendy KS, Abd-Allah AM, Ali HA, Tantawy GA, El-Sebae E (1991) Residue levels of chlorinated hydrocarbons in water and sediment samples from Nile Branches in the Delta, Egypt. J Environ Sci Health 26:15–36

    Article  CAS  Google Scholar 

  41. El-Kabbany S, Rashed MM, Zayed MA (2000) Monitoring of the pesticide levels in some water supplies and agricultural land, in El-Haram, Giza (A.R.E.). J Hazard Mater 72:11–21

    Article  CAS  Google Scholar 

  42. Malhat F, Nasr I (2013) Monitoring of organophosphorous pesticides residues in water from the Nile River Tributaries, Egypt. Am J Water Resour 1:1–4

    Google Scholar 

  43. Reynolds CS (1992) Eutrophication and the management of planktonic algae: what Vollenweider couldn’t tell us. In: Sutcliffe DW, Jones JG (eds) Eutrophication: research and application to water supply. Freshwater Biological Association, Ambleside, pp 4–29

    Google Scholar 

  44. Vasconcelos VM (2001) Toxic freshwater cyanobacteria and their toxins in Portugal. In: Chorus I (ed) Cyanotoxins-occurrence, effects, controlling factors. Springer, Berlin, pp 64–69

    Google Scholar 

  45. Howarth RW (2008) Coastal nitrogen pollution: a review of sources and trends globally and regionally. Harmful Algae 8:14–20

    Article  CAS  Google Scholar 

  46. Sigworth EA (1961) The production of palatable water. Taste Odor Control J 27(10):1–8 and 27(ll):l–4

    Google Scholar 

  47. Palmer CN (1962) Algae in water supplies. U.S. Public Health Service Publication No. 657, Washington, DC, 88 p. In: Lin SD (1977) Taste and odors in water supplies; A review, Illinois state water survey, Urbana, USA

    Google Scholar 

  48. Silvey JG, Henley DE, Wyatt JT (1972) Planktonic blue-green algae: growth and odor-production studies. J Am Water Works Assoc 64(l):35–39

    CAS  Google Scholar 

  49. Safferman RS, Rosen AA, Mashni CI, Morris ME (1967) Earthy-smelling substance from a blue-green alga. Environ Sci Technol 1(5):429–430

    Google Scholar 

  50. Gerber NN, Lechevalier HA (1965) Geosmin, and earthy-smelling substances isolated from actinomycetes. Appl Microbiol 13(6):935–938

    CAS  Google Scholar 

  51. Dzialowski AR, Smith VH, Huggins DG, Denoyelles F, Lim NC, Baker DS, Beury JH (2009) Development of predictive models for geosmin-related taste and odor in Kansas, USA, drinking water reservoirs. Water Res 43(11):2829–2840

    Article  CAS  Google Scholar 

  52. Omar WMW (2010) Perspectives on the use of algae as biological indicators for monitoring and protecting aquatic environments, with special reference to Malaysian freshwater ecosystems. Trop Life Sci Res 21(2):51–67

    Google Scholar 

  53. Stevenson RJ, Pan Y (1999) Assessing ecological conditions in rivers and streams with diatoms. In: Stoemer EF, Smol JP (eds) The diatom: applications to the environmental and earth science. Cambridge University Press, Cambridge, pp 11–40

    Chapter  Google Scholar 

  54. Whitehead PG, Hornberger GM (1984) Modelling algal behaviour in the River Thames. Water Res 18(8):945–953

    Article  CAS  Google Scholar 

  55. Cosgrovea JDW, Morrison P, Hillman K (2004) Periphyton indicate effects of wastewater discharge in the near-coastal zone, Perth, Western Australia. Estuar Coast Shelf Sci 61(2):331–338

    Article  Google Scholar 

  56. Hill MO, Mountford JO, Roy DB, Bunce RGH (1999) Ellenberg’s indicator values for British plants, vol 2. Institute for Terrestrial Ecology. ECOFACT, Technical Annex, Huntingdon

    Google Scholar 

  57. Hill BH, Herlihy AT, Kaufmann PR, Stevenson RJ, McCormick FH, Jonhson CB (2000) Use of periphyton assemblage data in an index of biotic integrity. J North Am Bethol Soc 19(1):50–67

    Google Scholar 

  58. Ho SC, Peng TS (1997) The use of river plankton and fish in water quality classification of Sg. Perai, Sg. Juru and Sg. Perlis. J Ensearch 10(2):115–124

    Google Scholar 

  59. Joubert G (1980) A bioassay application for quantitative toxicity management using the green algae, Selenastrum capricornutum. Water Res 14:1759–1763

    Article  CAS  Google Scholar 

  60. Dwivedi BK, Pandey GC (2002) Physicochemical factors and algal diversity of two ponds (Girija Kund and Maqubara Pond), Faizabad, India. Poll Res 21(3):361–369

    CAS  Google Scholar 

  61. Jafari NG, Gunale VR (2006) Hydrobiological study of algae of an urban freshwater River. J Appl Sci Environ Manag 10:153–158

    Google Scholar 

  62. Jafari N (2009) Using algae to assess environmental conditions in river. Int J Algae 11:246–259

    Article  Google Scholar 

  63. Mohamed ZA (2011) Cyanotoxins in Egypt and Saudi Arabia. In: Nriagu JO (ed) Encyclopedia of environmental health. Elsevier, Burlington, pp 872–880

    Chapter  Google Scholar 

  64. Mohamed ZA, Carmichael WW (2000) Seasonal variation in microcystin levels of River Nile water at Sohag city, Egypt. Ann Limnol 36:227–234

    Article  Google Scholar 

  65. Mohamed ZA, El-Sharouny HA, Ali WS (2007) Microcystin concentrations in the Nile River sediments and removal of microcystin-LR by sediments during Batch experiments. Arch Environ Contam Toxicol 52:489–495

    Article  CAS  Google Scholar 

  66. Amer R, Diez B, El-Shehawy R (2009) Diversity of hepatotoxic cyanobacteria in the Nile Delta, Egypt. J Environ Monit 11:126–133

    Article  CAS  Google Scholar 

  67. Haider S, Naithani V, Viswanathan PN, Kakkar P (2003) Cyanobacterial toxins: a growing environmental concern. Chemosphere 52:1–21

    Article  CAS  Google Scholar 

  68. Carmichael WW (1997) The cyanotoxins. Adv Bot Res 27:122–256

    Google Scholar 

  69. Carmichael WW (2000) A mini-review of cyanotoxins; Toxins of cyanobacteria (blue-green algae). In: Proceedings of the Xth international IUPAC symposium on mycotoxins and phycotoxins, Guaruja (Brazil), 21–25 May 2000

    Google Scholar 

  70. Mohamed ZA, El-Sharouny HA, Ali WS (2006) Microcystin production in benthic mats of cyanobacteria in the Nile River and irrigation canals, Egypt. Toxicon 47:584–590

    Article  CAS  Google Scholar 

  71. Verschuren D, Johnson TC, Kling HJ, Edgington DN, Leavitt PR, Brown ET, Talbot MR, Hecky RE (2002) History and timing of human impact on lake Victoria, East Africa. Proc R Soc Lond B 269:289–294

    Article  Google Scholar 

  72. Gugger M, Lenoir S, Berger C, Ledreux A, Druart JC, Humbert JF, Guette C, Bernard C (2005) First report in a river in France of the benthic cyanobacterium Phormidium favosum producing anatoxin-a associated with dog neurotoxicosis. Toxicon 45:919–928

    Article  CAS  Google Scholar 

  73. Mohamed ZA, Deyab MA, Abou-Dobara MI, El-Sayed AK, El-Raghi WM (2015) Occurrence of cyanobacteria and microcystin toxins in raw and treated waters of the Nile River, Egypt: implication for water treatment and human health. Environ Sci Pollut Res 22:11716–11727

    Article  CAS  Google Scholar 

  74. Dittmann E, Wiegand C (2006) Cyanobacterial toxins-occurrence, biosynthesis and impact on human affairs. Mol Nutr Food Res 50:7–11

    Article  CAS  Google Scholar 

  75. Codd GA, Morrison LF, Metcalf JS (2005) Cyanobacterial toxins: risk management for health protection. Toxicol Appl Pharmacol 203:264–272

    Article  CAS  Google Scholar 

  76. Reynolds GS (1988) Functional morphology and the adaptive strategies of freshwater phytoplankton. In: Sandgren CD (ed) Growth and survival strategies of the freshwater phytoplankton. Cambridge University Press, Cambridge, pp 388–433

    Google Scholar 

  77. Sivonsen K (1990) Effect of light, temperature, nitrate, orthophosphate and bacteria on growth and hepatotoxin production by Oscillatoria agardhii strain. Appl Environ Microbiol 56:2658–2666

    Google Scholar 

  78. Mohamed ZA (1998) Studies on the Egyptian toxic freshwater cyanobacteria (blue-green algae): identification, production and removal of microcystins. PhD thesis, South Valley University, Egypt, p 182

    Google Scholar 

  79. Lehman SY, Sandgren CD (1985) Species-specific rates of the growth and grazing loss among freshwater algae. Limnol Oceanogr 30:34–46

    Article  Google Scholar 

  80. EPA (Environmental Protection Agency) (2012) Cyanobacteria and cyanotoxins: information for drinking water systems. Office of Water 4304T. EPA-810F11001, p 9

    Google Scholar 

  81. Degefu F, Mengistu S, Schagerl M (2011) Influence of fish cage farming on water quality and plankton in fish ponds: a case study in the Rift Valley and North Shoa reservoirs, Ethiopia. Aquaculture 316:129–135

    Article  Google Scholar 

  82. Ali M, Abdel-Meguid M, Abdin A (2006) Assessment of floating fish cages impacts on the water, fauna, flora, sediments, aquatic weeds, fish and hydraulics of Damieta branch, Scientific Bulletin, Faculty of Engineering, Helwan University

    Google Scholar 

  83. El-Kholy R (2012) Assessment of fish cages’ impacts on the water quality in Rosetta branch of the Nile River using remote sensing technology. Nile Basin Water Sci Eng J 5:79–89

    Google Scholar 

  84. Beveridge MCM (1985) Cage and pen fish farming. Carrying capacity models and environmental impact. FAO Fish Tech Paper 255:131

    Google Scholar 

  85. FAO (2005) Aquaculture production, 2003, year book of fishery statistics, vol 96/2. Food and Agriculture Organization of the United Nations, Rome, Italy

    Google Scholar 

  86. El-Sheekh MM (2009) River Nile pollutants and their effect on life forms and water quality. In: Dumont HJ (ed) The Nile: origin, environments, limnology and human use. Springer Science

    Google Scholar 

  87. Nixon SW (2003) Replacing the Nile: are anthropogenic nutrients providing the fertility once brought to the Mediterranean by a great River? AMBIO J Hum Environ 32(1):30–39

    Article  Google Scholar 

  88. El-Gohary F, Abdel Wahaab R (1992) Lake Manzala water quality, impact assessment of sources of pollution. UNEP/WB-Lake Manzala, Cairo

    Google Scholar 

  89. Ogutu-Ohwayo R, Hecky RE, Cohen AS, Kaufman L (1997) Human impacts on the African Great Lakes. Environ Biol Fish 50:117–131

    Article  Google Scholar 

  90. APRP-Water Policy Activity Contract PCE-I-00-96-00002-00 Task order 22 (2002) Survey of Nile System Pollution Sources. Rep. No. 64: 84 pp

    Google Scholar 

  91. El-Ayouti A, Abou-Ali H (2013) Spatial heterogeneity of the Nile water quality in Egypt. J Environ Stat 4(8):1–12

    Google Scholar 

  92. CEMSWE (2008) The annual report of the results of the national network for monitoring the water pollutants of the Nile River and its branches in 2008. Technical report, Central Department of Environmental A_airs - Center of Environmental Monitoring and Studies of the Working Environment (CEMSWE) - Ministry of Health, Egypt

    Google Scholar 

  93. WHO (1991) GEMS/WATER 1990–2000. The Challenge Ahead. WHO/PEP/91.2. World Health Organization, Geneva

    Google Scholar 

  94. WHO (1992) GEMS/WATER operational guide, 3rd edn. World Health Organization, Geneva

    Google Scholar 

  95. APHA (1989) Standard methods for the examination of water and wastewater, vol 1, 17th edn. American Public Health Association, Washington, p 268

    Google Scholar 

  96. USSR State Committee for Hydrometeorology and Environmental Control (1987) Methods for bioindication and biotesting in the natural waters, vol 1. Hydrochemical Institute, Leningrad, 152 pp

    Google Scholar 

  97. USSR State Committee for Hydrometeorology and Environmental Control (1989) Methods for bioindication and biotesting in the natural waters, vol 2. Hydrochemical Institute, Leningrad, 275 pp

    Google Scholar 

  98. UNESCO (1983) International legend for hydrogeological maps. Technical Documents in Hydrology, SC.841/S7. United Nations Educational Scientific and Cultural Organization, Paris, 51 pp

    Google Scholar 

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El-Sheekh, M.M. (2016). Impact of Water Quality on Ecosystems of the Nile River. In: Negm, A. (eds) The Nile River. The Handbook of Environmental Chemistry, vol 56. Springer, Cham. https://doi.org/10.1007/698_2016_97

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