Evaluation of Lead, Copper and Iron Concentrations in Cyprus papyrus and Rivers in Iraq
In February 2023, samples were gathered from the research location. Five samples were taken from each leaf of the aquatic plant Cyprus papyrus, which is a member of the Cyperaceae family, as well as from the Tigris and Euphrates rivers. The primary heavy metals detected were lead (Pb), iron (Fe), and copper (Cu). Samples were collected from various areas in Iraq, including the Diyala River site, AL Rustamiya site, Karbala site, Babylon site, and AL-Rashdiya site as a control. The samples collected from each site consisted of water and Cyprus papyrus. The ICP-AES analysis successfully determined the concentration of elements in the samples. The results indicated that the Pb average concentration in plants varied across different sites, with the highest levels recorded in Diyala River, followed by AL Rustamiya, Babylon, Karbala, and Rashdiya sites (Control) at 3.67, 2.11, 0.55, 1.26, and 0.046 ppm, respectively. These values were compared with the UNEP standard of 0.01 ppm. Similarly, water samples also exhibited elevated levels of Pb average concentration in the same order of sites, with values of 2.97, 0.48, 0.41, 0.35, and 0.0891 ppm, compared with the UNEP standard of 0.005 ppm. Furthermore, the analysis of Fe average concentrations in plants revealed the highest levels in Diyala River, Babylon site, AL Rustamiya site, Karbala site, and Rashdiya (Control) at 0.5, 0.4, 0.3, and 0.1 ppm respectively. In water samples, Fe average concentrations were also found to be elevated in the same order of sites, with values of 1.3, 0.07, 0.06, 0.03, and 0.01 ppm. The presence of Cu was not detected in any of the samples collected from either plants or rivers. The aim of this study was to evaluate the levels of heavy metals in the Iraqi environment and examine their impact on living organisms.
Ahmad, M. and A.S. Bajahlan (2009). Quality comparison of tap water vs. bottled water in the industrial city of Yanbu (Saudi Arabia). Environ Monit Assess. 159: 1-14.
Ajmi, R.N. (2010). Biogeochemical Assessment of some heavy metals in Al-Hammarmarshby using GIS. Thesis, University of Baghdad, Iraq, pp. 120.
Ajmi, R.N. (2012). An Investigation of Elements (Mercury) Status in marshes in South of Iraq. Journal of Environmental Science and Engineering, A1: 1211-1217.
Ali, H. and E. Khan (2018). What are heavy metals? Longstanding controversy over the scientific use of the term ‘heavy metals’– proposal of a comprehensive definition. Toxicol. Environ. Chem., 100(1): 6-19.
Aljanabi, Z.Z., Hassan, F.M., AlObaidy and M.J. AbdulHameed (2022). Heavy metals pollution profiles in Tigris River within Baghdad city. IOP Conf. Series: Earth and Environmental Science, 1088: 012008.
Al-Khlaifat, A.L. and O.A. Al-Khashman (2007). Atmospheric heavy metal pollution in Aqaba city, Jordan, using Phoenix dactylifera L. leaves. Atmospheric Environment, 41(39): 8891-8897.
Al-Mayahi, B., Al-Jumaa, Z.M., Al-Taee, S.K., Khalil, S., AlMayahi, B., Al-Hamdany, M.O. and M.A. Al-Salh (2021). Bioaccumulation of heavy metals and histopathological changes in muscles of common carp (Cyprinus carpio L.) in the Iraqi rivers. Iraqi Journal of Veterinary Sciences, 35(2): 245-249.
Al-Mur, B.A. (2021). Assessment of heavy metal contamination in water, sediments, and Mangrove plant of Al-Budhai region, Red Sea Coast, Kingdom of Saudi Arabia. Journal of Taibah University for Science, 15(1): 423-441.
Al-Sarraj, E.S.Y.H. (2013). Study of Tigris River pollution with the different wastes in Mosul city and its effect on some local fishes. Ph. D. Thesis, Coll. Sci., Univ. Mosul: 136 pp.
Al-Taee, M.M., Al-Khateeb, A.N., Hussein, F.H. and F.M. Abid (2007). Evaluation of soluble non-essential trace metals in Shatt Al-Hilla, Iraq. Asian J. Chem., 19(1): 741-750.
Al-Taee, S.K., Karam, H. and H.Kh. Ismail (2020). Review on some heavy metals toxicity on freshwater fishes. J. Appl. Vet. Sci., 5(3): 78-86.
Arora, A., Sairam, R.K. and G.C. Srivastava (2002). Oxidative stress and antioxidative system in plants. Cur Sci., 82: 1227-1338.
Ataro, A., McCrindle, R.I., Botha, B.M., McCrindle, C.M.E. and P.P. Ndibewu (2008). Quantification of trace elements in raw cow’s milk by inductively coupled plasma mass spectrometry (ICP-MS). Food Chemistry, 111(1): 243-248.
Authman, M.M.N., Zaki, M.S., Khallaf, E.A. and H.H. Abbas (2015). Use of fish as bio-indicator of the effects of heavy metals pollution. J. Aquac. Res. Dev., 6(4): 328.
Ayers, R.S. and D.W. Westcot (1976). Water Quality for Agriculture. FAO Irrigation and Drainage Paper. 29-81p.
Begum, A., Harikrishna, S. and I. Khan (2009). Analysis of heavy metals in water, sediments and fish samples of Madivala Lakes of Bangalore, Karnataka. Int. J. Chem. Tech. Res., 1: 245-249.
Celik, A., Kartal, A., Akdogan, A. and Y. Kaska (2005). Determination of heavy metal pollution in Denizli (Turkey) by using Robinio pseudo-acacia L. Environmental International, 31: 105-112.
Chronopoulos, J., Haidouti, C., Chronopoulou-Sereli, A. and I. Massas (1997). Variations in plant and soil lead and cadmium content in urban parks in Athens, Greece. Science of The Total Environment, 196(1): 91-98.
De, A.K. (2005). Environmental Chemistry. (Fifth Edition), New Age International Publishers, New Delhi, India. 189-242p.
Fagbote E.O. and E.O. Olanipekun (2010). Evaluation of the status of heavy metal pollution of soil and plant (Chromolaena odorata) of Agbabu bitumen deposit area, Nigeria. American-Eurasian Journal of Scientific Research, 5(4): 241-248.
Hassan, F.M., Saleh, M.M. and J.M. Salman (2010). A study of physicochemical parameters and nine heavy metals in the Euphrates River, Iraq. E-J. Chem., 7(3): 685-692.
Howari, F. and K. Banat (2001). Assessment of Fe, Zn, Cd, Hg, and Pb in the Jordan and yarmouk river sediments in relation to their physicochemical properties and sequential extraction characterization. Water, Air, Soil Pollut., 132(1/2): 43-59.
Igwemmar, N.C., Kolawole, S.A. and S.O. Odunoku (2013). Heavy metal concentration in fish species sold in Gwagwalada Market, Abuja. International Journal of Science and Research, 2(11): 7-9.
Issa, H.M. and A.H. Alshatteri (2018). Assessment of heavy metals contamination in drinking water of Garmian Region, Kurdistan, Iraq. UHD Journal of Science and Technology, 2(2): 35-40.
Jaber, M.M.T., Al-Jumaa, Z.M., Al-Taee, S.K., Nahi, H.H., AlHamdany, M.O., Al-Salh, M.A. and B. Al-Mayahi (2021). Bioaccumulation of heavy metals and histopathological changes in muscles of common carp (Cyprinus carpio L.) in the Iraqi rivers. Iraqi J. Vet. Sci., 35(2): 245-249.
Jasim, B.M. (2017). Impact of certain heavy metals on histology and physiology of fishes: Interpretative study. Ann. Res. Rev. Biol., 19(6): 1-21. D.
Kaiser, E., Arscott, D.B., Tockner, K. and B. Sulzberger (2004). Sources and distribution of organic carbon and nitrogen in the Tagliamento River, Italy. Aquat. Sci., 66: 103-116.
Kassim, T.I., Al‐ Saadi, H.A., Al‐ Lami, A.A. and H.H. Al‐Jaberi (1997). Heavy metals in water, suspended particles, sediments and aquatic plants of the upper region of Euphrates river, Iraq. J. Environ. Sci. Health, Part A: Environ. Sci. Eng. Toxicol., 32(9-10): 2497-2506.
Mburu, G., Hodgson, I., Kalibala, S., Haamujompa, C., Cataldo, F., Lowenthal, E.D. and D. Ross (2014). Adolescent HIV disclosure in Zambia: barriers, facilitators and outcomes. J. Int. AIDS Soc., 17(1): 18866.
Meade, J.W. (1998). Aquaculture Management. CBS Publishers & Distributors, New Delhi, India. 9 p.
Neenu, S. and K. Ramesh (2020). Weather - micronutrient interactions in soil and plants– A critical review. Chem Sci Rev Lett, 9(33): 205-219.
Oguzie, F.A. (2003). Heavy metals in fish, water and effluents of Lower Ikpoba River in Benin City, Nigeria. Pak. J. Sci. Ind. Res., 46(3): 156-160.
Pareek, R.K., Ambrina, D.R., Khan, S., Srivastava, D.R.P.A. and D.R.S. Roy (2018). A study of heavy metal pollution of Ghaggar River. International Journal of Theoretical & Applied Sciences, 10(1): 66-70.
Pearson, J. and D.C. Havill (1988). The effect of hypoxia and sulfide on culture-grown wetland and non-wetland plants. II. Metabolic and physiological changes. J Exp Bot, 39: 431-439.
Pip, E. and J. Stepaniuk (1997). Cadmium, copper, and lead in fish from the Lower Nelson River system in northern Manitoba. Canadian Field-Naturalist, 111(3): 403-406.
Rajeshkumar, S. and X. Li (2018). Bioaccumulation of heavy metals in fish species from the Meiliang Bay, Taihu Lake, China. Toxicol. Rep., 5: 288-295.
Rani, I., Singh, V., Sharma, M.K. and R. Sisodia (2021). Assessment of heavy metal load in medicinal plants collected from a major wholesale market of India. Poll Res., 40(4): 1205-1213.
Salah, E.A.M., Al-Hiti, I.K. and K.A. Alessawi (2015). Assessment of heavy metals pollution in Euphrates river water, Amiriyah Fallujah, Iraq. Journal of Environment and Earth Science, 5(15).
Shah, V. and A. Daverey (2020). Phytoremediation: A multidisciplinary approach to clean up heavy metal contaminated soil. Environ. Technol. Innovation, 18: 100774.
Talal, A., Alkinani, S. and A.F. Almansoory (2020). Some of heavy elements in water, fish and plant species from Shatt Al-Arab at Basrah Governorate -Iraq. Basrah Journal of Science, 38(1): 60.
Tatah, V.S., Yakubu, E.O., Ayantse, L.M., Dearsley, F.U. and S.A. Uba (2020). Determination of heavy metals in soil and water samples from Mambilla artisanal mining site and its environs. Trends in Applied Sciences Research, 15: 125-132
Tchounwou, P.B., Yedjou, C.G., Patlolla, A.K. and D.J. Sutton (2012). Heavy metals toxicity and the environment. Exp. Suppl., 101: 133-164.
Wang, S. and X. Shi (2001). Molecular mechanisms of metal toxicity and carcinogenesis. Mol. Cell Biochem., 222(1-2): 3-9.
Westall, J. and W. Stumm (1980). The hydrosphere. In: Handb. Environ. Chem. 1 (Part A), pp. 17e49.
Yousif, R.A., Choudhary, M.I., Ahmed, S. and Q. Ahmed (2021). Bioaccumulation of heavy metals in fish and other aquatic organisms from Karachi Coast, Pakistan. Nusantara Biosci., 13(1): 73-84.
Zeki, G. and M. Dilshad (2019). Assessment of heavy metal pollution in Heshkaro stream of Duhok city, Iraq. Journal of Cleaner Production, 237: 117681.