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Articles

Trace elements concentration in soil and plant within the vicinity of abandoned tanning sites in Bangladesh: an integrated chemometric approach for health risk assessment

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Pages 752-767 | Received 10 Mar 2021, Accepted 01 May 2021, Published online: 01 Jun 2021

References

  • Ahmad, J.U., and Goni, M.A., 2010. Heavy metal contamination in water, soil, and vegetables of the industrial areas in Dhaka, Bangladesh. Environmental monitoring and assessment, 166, 347–357.
  • Ahmed, M.K., et al., 2016. A comprehensive assessment of arsenic in commonly consumed foodstuffs to evaluate the potential health risk in Bangladesh. Science of the total environment, 544, 125–133.
  • Akoto, O. Ephramin, J.H., and Darko, G., 2008. Heavy metals pollution in surface soils in the vicinity of abundant railway servicing workshop in Kumasi, Ghana. International journal of environmental research, 2 (4), 359–364.
  • Alam, M.G.M., Snow, E.T., and Tanaka, A., 2003. Arsenic and heavy metal contamination of vegetables grown in Samta village, Bangladesh. Science of the total environment, 308, 83–96.
  • Anyanwu, B.O., 2018. Heavy metal mixture exposure and effects in developing nations: an update. Toxics, 6 (4), 65.
  • Ashraf, M.A., Maah, J., and Yusoff, I., 2011. Heavy metals accumulation in plants growing in ex tin mining catchment. International journal of environmental science & technology, 8 (2), 401–416.
  • Bonanno, G., 2013. Comparative performance of trace element bioaccumulation and biomonitoring in the plant species Typha domingensis, Phragmites australis and Arundo donax. Ecotoxicology and environment safety, 97, 124–130.
  • CCME (Canadian Council of Ministers of the Environment). 2003. Canada: Canadian Environmental Quality Guidelines.
  • Cui, Y.L., et al., 2004. Transfer of metals from soil to vegetables in an area near a smelter in Nanning, China. Environment international, 30, 785–791.
  • DEP (Department of Environmental Protection). 2003. Assessment levels for soil, sediment and water contaminated sites management series. Perth’s, Australia: DEP.
  • Fagbote, E.O., and Olanipekun, E.O., 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.
  • FAO (Food and Agriculture Organization). 1983. Compilation of legal limits for hazardous substances in fish and fishery products. FAO Fishery Circular No. 464 (pp. 5–10). Rome: Food and Agriculture Organization of the United Nations
  • FAO (Food and Agriculture Organization). 2006. Arsenic contamination of irrigation water, soil and crops in Bangladesh: Risk implications for sustainable agriculture and food safety in Asia. Bangkok: Food and Agriculture Organization of the United Nations Regional Office for Asia and the Pacific.
  • FAO/WHO WHO (Food and Agriculture Organization/World Health Organization)., 2016. General standard for contaminants and toxins in food and feed. Codex Alimentarius International Food Standards. CODEX STAN 193–1995.
  • Frossard, E., et al., 2000. Potential for increasing the content and bioavailability of Fe, Zn and Ca in plants for human nutrition. Journal of the science of food and agriculture, 80 (7), 861–879.
  • FSANZ., 2003 In: The 20th Australian Total Diet Survey: a total diet survey of pesticide residues and contaminants. Food Standards Australia New Zealand 2002, Canberra, Australia. http://www.foodstandards.gov.au/publications/documents/Final_20th_Total_Diet_Survey.pdf.
  • Hatamian, M., et al., 2019. Growth characteristics of ornamental judas tree (Cercis siliquastrum L.) seedlings under different concentrations of lead and cadmium in irrigation water. Acta scientiarum polonorum hortorum cultus, 18 (2), 87–96.
  • HIES., 2017. Preliminary report on household income and expenditure survey 2016. Bangladesh: Bangladesh Bureau of Statistics, Ministry of Planning, Govt. of the People’s Republic of Bangladesh, Dhaka-1000.
  • Igwe, O., et al., 2014. Risks associated with the mining of Pb-Zn minerals in some parts of the Southern Benue trough, Nigeria. Environmental monitoring and assessment, 186 (6), 3755–3765.
  • Iqbal, J., and Shah, M.H., 2011. Distribution, correlation and risk assessment of selected metals in urban soils from Islamabad, Pakistan. Journal of hazardous materials, 192, 887–898.
  • Islam, M.S., 2021. Preliminary assessment of trace elements in surface and deep waters of an urban river (Korotoa) in Bangladesh and associated health risk. Environmental science and pollution research.doi:10.1007/s11356-021-12541-5
  • Islam, M.S., and Hoque, M.F., 2014. Concentrations of heavy metals in vegetables around the industrial area of Dhaka city, Bangladesh and health risk assessment. International food research journal, 21 (6), 2121–2126.
  • Islam, M.S., et al., 2014a. Preliminary assessment of heavy metal contamination in surface sediments from a river in Bangladesh. Environmental earth sciences, 73 (4), 1837–1848.
  • Islam, M.S., et al., 2014b. Trace metals in soil and vegetables and associated health risk assessment. Environmental monitoring and assessment, 186, 8727–8739.
  • Islam, M.S., Ahmed, M.K, and Al-Mamun, M.H., 2014c. Heavy metals in cereals and pulses: health implications in Bangladesh. Journal of agricultural and food chemistry, 62 (44), 10828–10835.
  • Islam, M.S., et al., 2015a. Potential ecological risk of hazardous elements in different land-use urban soils of Bangladesh. Science of the total environment, 512–513, 94–102.
  • Islam, M.S., et al., 2015b. Heavy metal pollution in surface water and sediment: a preliminary assessment of an urban river in a developing Country. Ecological indicators, 48, 282–291.
  • Islam, M.S., Ahmed, M.K., and Habibullah-Al-Mamun, M., 2016. Apportionment of heavy metals in soil and vegetables and associated health risks assessment. Stochastic environmental research and risk assessment, 30 (1), 365–377.
  • Islam, M.S., et al., 2018a. Assessment of heavy metals in foods around the industrial areas: health hazard inference in Bangladesh. Geocarto International, 35 (3), 280–295.
  • Islam, M.S., Khanam, M.S., and Sarker, N.I., Health risk assessment of metals transfer from soil to the edible part of some vegetables grown in Patuakhali province of Bangladesh. archives of agriculture and environmental science, 3 (2), 180–186.
  • Islam, M.S., et al., 2018c. Ecological risk analysis of heavy metals toxicity from agricultural soils in the industrial areas of Tangail District Bangladesh. SF journal of environmental and earth science, 1 (2), 1–9.
  • Islam, R., et al., 2018d. Trace metals concentration in vegetables of a sub-urban industrial area of Bangladesh and associated health risk assessment. AIMS environmental science, 5 (3), 130–142.
  • Islam, M.S., et al., 2019. Sources and ecological risks of heavy metals in soils under different land uses in Bangladesh. Pedosphere, 29 (5), 665–675.
  • Islam, M.S., et al., 2020. Human and ecological risks of metals in soils under different land use in an urban environment of Bangladesh. Pedosphere, 30 (2), 201–212.
  • JECFA., 2000. Evaluation of certain food additives and contaminants. Fifty-third report of the joint FAO/WHO Expert Committee on Food Additives. WHO technical report series, No. 896. Geneva: World Health Organization
  • Juen, L.Y., et al., 2014. Bioconcentration and translocation efficiency of metals in paddy (Oryza sativa): a case study from Alor Setar, Kedah, Malaysia. Sains malays, 43, 521–528.
  • Karim, R.A., et al., 2008. Arsenic and heavy metal concentrations in surface soils and vegetables of Feni district in Bangladesh. Environmental monitoring and assessment, 145, 417–425.
  • Karim, Z., et al., 2014. Heavy metal content in urban soils as an indicator of anthropogenic and natural influences on landscape of Karachi—a multivariate spatio-temporal analysis. Ecological indicators, 42, 20–31.
  • Kashem, M.A., and Singh, B.R., 1999. Heavy metal contamination of soil and vegetation in the vicinity of industries in Bangladesh. Water, air, and soil pollution, 115 (1/4), 347–361.
  • Khairiah, J., et al., 2009. Content of heavy metals in soil collected from selected paddy cultivation areas in kedah and perlis, Malaysia. Journal of applied sciences research, 5 (12), 2179–2188.
  • Khan, S., et al., 2010. Soil and vegetables enrichment with heavy metals from geological sources in Gilgit, Northern Pakistan. Ecotoxicology and environment safety, 73 (7), 1820–1827.
  • Kormoker, T., et al., 2019. Toxic metals in agricultural soils near the industrial areas of Bangladesh: ecological and human health risk assessment. Toxin reviews, 2019, 1–20.
  • Kormoker, T., et al., 2020a. Concentrations, source apportionment and potential health risk of toxic metals in foodstuffs of Bangladesh. Toxin reviews.doi:10.1080/15569543.2020.1731551.
  • Kormoker, T., et al., 2020b. Presence of toxic metals in rice with human health hazards in Tangail district of Bangladesh. International journal of environmental health research. doi:10.1080/09603123.2020.1724271.
  • Koz, B., et al., 2008. Analysis of mosses along Sarp-Samsun highway in Turkey. Journal of hazardous materials, 153, 646–654.
  • Lei, M., et al., 2010. Pollution, fractionation and mobility of Pb, Cd, Cu, and Zn in garden and paddy soils from a Pb/Zn mining area. Environmental monitoring and assessment, 168, 215–222.
  • Li, Q.S., et al., 2012. Health risk of heavy metals in food crops grown on reclaimed tidal flat soil in the Pearl River Estuary, China. Journal of hazardous materials, 227–228, 148–154.
  • Li, J.H., et al., 2009. Distribution of heavy metals in agricultural soils near a petrochemical complex in Guangzhou, China. Environmental monitoring and assessment, 153, 365–375.
  • Li, X., and Thornton, I., 2001. Chemical partitioning of trace and major elements in soils contaminated by mining and smelting activities. Applied geochemistry, 16 (15), 1693–1706.
  • Liu, W.X., et al., 2007. Uptake of Toxic Heavy Metals by Rice (Oryza sativa L.) Cultivated in the Agricultural Soil near Zhengzhou City, People’s Republic of China. Bulletin of environment contamination and toxicology, 79, 209–213.
  • Liu, W.X., et al., 2009. Accumulation and translocation of toxic heavy metals in winter wheat (Triticum aestivum L.) growing in agricultural soil of Zhengzhou, China. Bulletin of environment contamination and toxicology, 82 (3), 343–347.
  • Loska, K., et al., 2003. Assessment of arsenic enrichment of cultivated soils in Southern Poland. Polish journal of environmental studies, 12 (2), 187–192.
  • Lu, X., et al., 2014. Assessment of metals pollution and health risk in dust from nursery schools in Xi’an, China. Environmental research, 128, 27–34.
  • Luo, W., et al., 2007. Effects of land use on concentrations of metals in surface soils and ecological risk around Guanting Reservoir, China. Environmental geochemistry and health, 29, 459–471.
  • Mallick, S.R., et al., 2019. Heavy metals toxicity of surface soils near industrial vicinity: a study on soil contamination in Bangladesh. Archives of agriculture and environmental science, 4 (4), 356–368.
  • Manzoor, S., et al., 2006. Multivariate analysis of trace metals in textile effluents in relation to soil and groundwater. Journal of hazardous materials, 137, 31–37.
  • Mohammadi, A.A., et al., 2019. Carcinogenic and non-carcinogenic health risk assessment of heavy metals in drinking water of Khorramabad, Iran. MethodsX, 6, 1642–1651.
  • National Academy of Sciences., 2001. Dietary reference intakes for vitamin A, vitamin K, arsenic, boron, chromium, copper, iodine, iron, manganese, molybdenum, nickel, silicon, vanadium, and zinc. Washington, DC: National Academy of Sciences
  • Nganje, T.N., Adamu, C.I., and Ukpong, E.E., 2010. Heavy metal concentrations in soils and plants in the vicinity of Arufu lead-zinc mine, Middle Benue Trough. Chinese journal of geochemistry, 29 (2), 167–174.
  • NRC., 1989. Recommended dietary allowances, National Research Council (US) sub-committee. Washington: National Academy Press
  • Nriagu, J., and Pacyna, J., 1998. Quantitative assessment of worldwide contamination of air, water and soils by trace metals. Nature, 333, 134–139.
  • Page, A.L., Chang, A.C., and Mohamed, E.A., 1987. Cadmium levels in soils and crops. The United States Scope, 31, 120–122.
  • Pandey, R., Shubhashish, K., and Pandey, J., 2012. Dietary intake of pollutant aerosols via vegetables influenced by atmospheric deposition and wastewater irrigation. Ecotoxicology and environment safety, 76, 200–208.
  • Pekey, H., et al., 2004. Ecological risk assessment using trace elements from surface sediments of Izmit Bay (Northeastern Marmara Sea) Turkey. Marine pollution bulletin, 48 (9–10), 946–953.
  • Proshad, R., et al., 2017. Human health hazard implications of heavy metals in agricultural foodstuff grown around brick kiln areas in Bangladesh. Journal of environmental science, computer science, 6, 138–156.
  • Proshad, R., et al., 2018a. Chronic exposure assessment of toxic elements from agricultural soils around the industrial areas of Tangail district. Archives of agriculture and environmental science, 3 (4), 317–336.
  • Proshad, R., Islam, M.S., and Kormoker, T., 2018b. Assessment of heavy metals with ecological risk of soils in the industrial vicinity of Tangail district, Bangladesh. International journal of advanced geosciences, 6 (1), 108–116.
  • Proshad, R., et al., 2019a. Contamination of heavy metals in agricultural soils: ecological and health risk assessment. SF journal of nanochemistry and nanotechnology, 2 (1), 1012.
  • Proshad, R., et al., 2019b. Potential health risk of heavy metals via consumption of rice and vegetables grown in the industrial areas of Bangladesh. Human and ecological risk assessment, 26 (4), 921–943.
  • Proshad, R., et al., 2020. Appraisal of heavy metal toxicity in surface water with human health risk by a novel approach: a study on an urban river in vicinity to industrial areas of Bangladesh. Toxin reviews.doi:10.1080/15569543.2020.1780615.
  • Proshad, R., et al., 2021. Investigation of trace metals in riverine waterways of Bangladesh using multivariate analyses: spatial toxicity variation and potential health risk assessment. Environmental science and pollution research.doi:10.1007/s11356-021-13077-4.
  • Rahman, M.M., Asaduzzaman, M., and Naidu, R., 2013. Consumption of arsenic and other elements from vegetables and drinking water from an arsenic-contaminated area of Bangladesh. Journal of hazardous materials, 262, 1056–1063.
  • Rahman, M.A., et al., 2014. Heavy metals in Australian grown and imported rice and vegetables on sale in Australia: health hazard. Ecotoxicology and environment safety, 100, 53–60.
  • Rajmohan, N., et al., 2014. Vertical distribution of heavy metals in soil profile in a seasonally waterlogging agriculture field in Eastern Ganges Basin. Environmental monitoring and assessment, 186 (9), 5411–5427.
  • Rattan, R.K., et al., 2005. Long-term impact of irrigation with sewage effluents on heavy metal content in soils, crops and ground water—a case study. Agriculture, ecosystems & environment, 109 (3–4), 310–322.
  • Reeves, P.G., and Chaney, R.L., 2001. Mineral nutrients status of female rats affects the absorption and organ distribution of cadmium from sunflower kernels (Helianthus annuus L.). Environmental research, 85 (3), 215–225.
  • Renner, R., 2004. Arsenic and lead leach out of popular fertilizer. Environmental science technology, 38, 382A.
  • Saha, N., and Zaman, M.R., 2013. Evaluation of possible health risks of heavy metals by consumption of foodstuffs available in the central market of Rajshahi City, Bangladesh. Environmental monitoring and assessment, 185, 3867–3878.
  • Santos, E.E., Lauri, D.C., and Silveira, P.C.L., 2004. Assessment of daily intake of trace elements due to consumption of foodstuffs by adult inhabitants of Rio de Janeiro city. Science of the total environment, 327, 69–79.
  • Shah, M.H., and Shaheen, N., 2007. Annual TSP and trace metal distribution in urban atmosphere of Islamabad in comparison with mega-cities of the world. Human and ecological risk assessment, 13 (4), 884–899.
  • Shaheen, N., et al., 2016. Presence of heavy metals in fruits and vegetables: health risk implications in Bangladesh. Chemosphere, 152, 431–438.
  • Shahid, M., et al., 2017. Foliar heavy metal uptake, toxicity and detoxification in plants: a comparison of foliar and root metal uptake. Journal of hazardous materials, 325, 36–58.
  • Shaw, A. J., 1990. Heavy metal tolerance in plants: evolutionary aspects. Florida: CRC Press.
  • Smith, N.M., et al., 2006. Inorganic arsenic in cooked rice and vegetables from Bangladeshi households. Science of the total environment, 370, 294–301.
  • Souri, M.K., et al., 2018. Elemental profile of heavy metals in garden cress, coriander, lettuce and spinach, commonly cultivated in Kahrizak, South of Tehran- Iran. Open agriculture, 3 (1), 32–37.
  • Sulaiman, F.R., and Hamzah, H.A., 2018. Heavy metals accumulation in suburban roadside plants of a tropical area (Jengka, Malaysia). Ecological processes, 7 (1), 28.
  • Sun, Y.B., et al., 2010. Spatial, sources and risk assessment of heavy metal contamination of urban soils in typical regions of Shenyang, China. Journal of hazardous materials, 174, 455–462.
  • Tiwari, K.K., et al., 2011. Metal contamination of soil and translocation in vegetables growing under industrial wastewater irrigated agricultural field of Vadodara, Gujarat, India. Ecotoxicology and environment safety, 74, 1670–1677.
  • Tusher, T.R., et al., 2020. Contamination of toxic metals and polycyclic aromatic hydrocarbons (PAHs) in rooftop vegetables and human health risks in Bangladesh. Toxin reviews.doi:10.1080/15569543.2020.1767650.
  • USEPA., 2009. Supplemental guidance for developing soil screening levels for superfund sites. Washington, D.C: Office of Solid Waste and Emergency Response. http://www.epa.gov/superfund/health/conmedia/soil/index.htm
  • USEPA., 1989. Risk assessment guidance for superfund, Vol. I: human health evaluation manual. EPA/540/1–89/002. Washington, D.C: Office of Soild Waste and Emergency Response.
  • USEPA., 1991. Human health evaluation manual, supplemental guidance: "Standard default exposure factors". OSWER Directive 9285.6-03
  • USEPA., (2010) Human Health Risk Assessment: Risk-Based Concentration Table. http://www.epa.gov/reg3hwmd/risk/human/rbconcentration_table/Generic_Tables/html [Accessed 25 December 2020]
  • Uzu, G., et al., 2011. In vitro assessment of the pulmonary toxicity and gastric availability of lead-rich particles from a lead recycling plant. Environmental science & technology, 45, 7888–7895.
  • VROM (Volkshuisvesting, Ruimtelijke Ordening enMilieubeheer)., 2000. Circular on target values and intervention values for soil remediation. Netherlands: Spatial Planning and Environment, Netherlands: Ministry of Housing.
  • Wang, X., et al., 2005. Health risks of heavy metals to the general public in Tianjin, China via consumption of vegetables and fish. Science of the total environment, 350 (1–3), 28–37.
  • WHO., 1996. Guidelines for drinking-water quality (2nd ed., Vol. 2). Geneva: World Health Organization
  • Xu, D., et al., 2013. Assessment of trace metal bioavailability in garden soils and health risks via consumption of vegetables in the vicinity of tongling mining area, China. Ecotoxicology and environment safety, 90, 103–111.
  • Yoon, J., et al., 2006. Accumulation of Pb, Cu, and Zn in native plants growing on a contaminated Florida site. Science of the total environment, 368, 456–464.
  • Yu, J., et al., 2012. Evaluation of ecological risk and source of heavy metals in vegetable-growing soils in Fujian province. Environmental earth sciences, 65 (1), 29–37.
  • Zabir, A.A., et al., 2016. Spatial dissemination of some heavy metals in soil adjacent to Bhaluka industrial area, Mymensingh, Bangladesh. American journal of applied sciences, 2 (6), 38–47.
  • Zhang, M., et al., 2012. Factorial analysis of heavy metal concentration in roadside farmland plants around Kathmandu. Applied mechanics and materials, 178–181, 1016–1021.
  • Zhang, L., et al., 2007. Heavy metal contamination in western Xiamen Bay sediments and its vicinity, China. Marine pollution bulletin, 54 (7), 974–982.
  • Zhao, S., and Duo, L., 2015. Bioaccumulation of cadmium, copper, zinc, and nickel by weed species from municipal solid waste compost poll. Polish journal of environmental studies, 24 (1), 413–417.

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