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Research Article

Health risk assessment of potentially toxic elements in common cultivated rice (Oryza sativa) emphasis on environmental pollution

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Pages 1019-1034 | Received 24 Jul 2020, Accepted 29 Aug 2020, Published online: 16 Sep 2020

References

  • Ağca, N., and Özdel, E., 2014. Assessment of spatial distribution and possible sources of heavy metals in the soils of Sariseki-Dörtyol District in Hatay Province (Turkey). Environmental Earth sciences, 71 (3), 1033–1047.
  • Al-Saleh, I., and Abduljabbar, M., 2017. Heavy metals (lead, cadmium, methylmercury, arsenic) in commonly imported rice grains (Oryza sativa) sold in Saudi Arabia and their potential health risk. International journal of hygiene and environmental health, 220 (7), 1168–1178.
  • Antoine, J.M., et al. 2012. Dietary intake of minerals and trace elements in rice on the Jamaican market. Journal of food composition and analysis, 26 (1–2), 111–121.
  • Arunakumara, K., Walpola, B.C., and Yoon, M.-H., 2013. Current status of heavy metal contamination in Asia’s rice lands. Reviews in environmental science and bio/technology, 12 (4), 355–377.
  • Benke, K., and Hamilton, A., 2008. Quantitative microbial risk assessment: uncertainty and measures of central tendency for skewed distributions. Stochastic environmental research and risk assessment, 22 (4), 533–539.
  • Bortey-Sam, N., et al. 2015. Health risk assessment of heavy metals and metalloid in drinking water from communities near gold mines in Tarkwa, Ghana. Environmental monitoring and assessment, 187 (7), 397.
  • Cai, L., et al. 2012. Source identification of eight hazardous heavy metals in agricultural soils of Huizhou, Guangdong Province, China. Ecotoxicology and environmental safety, 78, 2–8.
  • Cao, H., et al. 2010. Heavy metals in rice and garden vegetables and their potential health risks to inhabitants in the vicinity of an industrial zone in Jiangsu. Journal of environmental sciences, 22 (11), 1792–1799.
  • CEPA (China National Environmental Protection Agency). 1995. Environmental quality standard for soils; report no.GB15618-1995. Beijing, China: China National Environmental Protection Agency (in Chinese).
  • Chaney, R.L., et al. 2004. An improved understanding of soil Cd risk to humans and low cost methods to phytoextract Cd from contaminated soils to prevent soil Cd risks. Biometals: an international journal on the role of metal ions in biology, biochemistry, and medicine, 17 (5), 549–553.
  • Chen, L., et al. 2018. Heavy metals in food crops, soil, and water in the Lihe River Watershed of the Taihu Region and their potential health risks when ingested. Science of the total environment, 615, 141–149.
  • Chen, X.-X., et al. 2020. Health risk assessment associated with heavy metal accumulation in wheat after long-term phosphorus fertilizer application. Environmental pollution, 262, 114348.
  • Cohen, M.D., et al. 1993. Mechanisms of chromium carcinogenicity and toxicity. Critical reviews in toxicology, 23 (3), 255–281.
  • Dastoorpoor, M., et al. 2019. Air pollution and hospital admissions for cardiovascular diseases in Ahvaz, Iran. The science of the total environment, 652, 1318–1330.
  • Diagomanolin, V., et al. 2004. Heavy metals (Ni, Cr, Cu) in the karoon waterway river, Iran. Toxicology letters, 151 (1), 63–67.
  • Djahed, B., et al. 2018. Stochastic exposure and health risk assessment of rice contamination to the heavy metals in the market of Iranshahr, Iran. Food and chemical toxicology: an international journal published for the British Industrial Biological Research Association, 115, 405–412.
  • Doabi, S.A., et al. 2018. Pollution and health risk assessment of heavy metals in agricultural soil, atmospheric dust and major food crops in Kermanshah province, Iran. Ecotoxicology and environmental safety, 163, 153–164.
  • Eskola, M., et al. 2020. Worldwide contamination of food-crops with mycotoxins: Validity of the widely cited ‘FAO estimate’of 25%. Critical reviews in food science and nutrition, 60 (16), 2773–2789.
  • Fallahzadeh, R.A., et al. 2018. Spatial distribution variation and probabilistic risk assessment of exposure to chromium in ground water supplies; a case study in the east of Iran. Food and chemical toxicology: an international journal published for the British Industrial Biological Research Association, 115, 260–266.
  • Fang, Y., et al. 2014. Concentrations and health risks of lead, cadmium, arsenic, and mercury in rice and edible mushrooms in China. Food chemistry, 147, 147–151.
  • Farzadkia, M., et al. 2015. Prediction of gas emission and derived electrical power generation from shiraz landfill. Global nest journal, 17, 487–497.
  • Ghaneian, M., et al. 2017. Biosorption of hexavalent chromium from aqueous solution onto pomegranate seeds: kinetic modeling studies. International journal of environmental science and technology, 14 (2), 331–340.
  • Ghasemi, S.M., et al. 2017. Application of modified maize hull for removal of Cu (II) ions from aqueous solutions. Environment protection engineering, 43 (4), 93–103.
  • Gholizadeh, A., et al. 2019. Ecological and health risk assessment of exposure to atmospheric heavy metals. Ecotoxicology and environmental safety, 184, 109622.
  • Goudarzi, G., et al. 2018. Health risk assessment on human exposed to heavy metals in the ambient air PM10 in Ahvaz, southwest Iran. International journal of biometeorology, 62 (6), 1075–1083.
  • Goudarzi, G., et al. 2019. Ambient particulate matter concentration levels of Ahvaz, Iran, in 2017. Environmental geochemistry and health, 41 (2), 841–849.
  • Goyer, R.A., and Clarkson, T.W., 1996. Toxic effects of metals. Casarett and Doull's toxicology: The basic science of poisons, 5, 696–698.
  • Gruszecka-Kosowska, A., 2018. Assessment of the Kraków inhabitants’ health risk caused by the exposure to inhalation of outdoor air contaminants. Stochastic environmental research and risk assessment, 32 (2), 485–499.
  • Gunduz, S., and Akman, S., 2013. Investigation of arsenic and cadmium contents in rice samples in Turkey by electrothermal atomic absorption spectrometry. Food analytical methods, 6 (6), 1693–1696.
  • Hu, B., et al. 2017. Assessment of heavy metal pollution and health risks in the soil-plant-human system in the Yangtze River Delta, China. International journal of environmental research and public health, 14 (9), 1042.
  • Huang, Z., et al. 2013. Health risk assessment of heavy metals in rice to the population in Zhejiang, China. PLoS one, 8 (9), e75007.
  • Hussaina, R.F., and Abdullaha, E.J., 2018. Risk assessment of heavy metals contamination in paddy plants fields at Al-Mishkhab Area, Iraq. Journal of university of Babylon, 26, 124–134.
  • Idani, E., et al. 2020. Characteristics, sources, and health risks of atmospheric PM10-bound heavy metals in a populated Middle Eastern city. Toxin reviews, 39 (3), 266–274.
  • 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.
  • Jafari, A., et al. 2018. The concentration data of heavy metals in Iranian grown and imported rice and human health hazard assessment. Data in brief, 16, 453–459.
  • Jorhem, L., et al. 2008. Elements in rice on the Swedish market: part 2. Chromium, copper, iron, manganese, platinum, rubidium, selenium and zinc. Food additives and contaminants: part A, 25 (7), 841–850.
  • Kashian, S., and Fathivand, A., 2015. Estimated daily intake of Fe, Cu, Ca and Zn through common cereals in Tehran, Iran. Food chemistry, 176, 193–196.
  • Kentel, E., and Aral, M., 2004. Probabilistic-fuzzy health risk modeling. Stochastic environmental research and risk assessment, 18 (5), 324–338.
  • Khaefi, M., et al. 2017. Association of particulate matter impact on prevalence of chronic obstructive pulmonary disease in Ahvaz, southwest Iran during 2009–2013. Aerosol and air quality research, 17 (1), 230–237.
  • Khaefi, M., et al. 2016. An association between ambient pollutants and hospital admitted respiratory cases in Ahvaz, Iran. Fresenius environment bulletin, 25, 3955–3961.
  • Khan, N., et al. 2015. Determination of toxic heavy metals and speciation of arsenic in seaweeds from South Korea. Food chemistry, 169, 464–470.
  • Kolahkaj, M., and Batalebloie, S., 2007. Health risk of cadmium and lead in the rice cultivated in Meydavood. Khoozestan, 145 (3):831–842.
  • Kolahkaj, M., et al. 2017. Study of arsenic accumulation in rice and its exposure dose in residents of Meydavood Area, Khoozestan Province. Iranian journal of health and environment, 9, 537–544.
  • Kongsri, S., et al. 2016. Instrumental neutron activation analysis of selected elements in Thai jasmine rice. Energy procedia, 89, 361–365.
  • Kwon, J.C., Nejad, Z.D., and Jung, M.C., 2017. Arsenic and heavy metals in paddy soil and polished rice contaminated by mining activities in Korea. CATENA, 148, 92–100.
  • Malakootian, M., et al. 2011. Determination of Pb, Cd, Cr and Ni concentration in imported Indian rice to Iran. Iranian journal of health and environment, 4, 77–84.
  • Mehrnia, M.A., 2013. Cadmium levels in rice product of south of Iran and its daily intake. International journal of agriculture and crop sciences, 5, 2349.
  • Miri, M., et al. 2017. Health risk assessment of heavy metal intake due to fish consumption in the Sistan region, Iran. Environmental monitoring and assessment, 189 (11), 583.
  • Miri, M., et al. 2018a. Environmental determinants of polycyclic aromatic hydrocarbons exposure at home, at kindergartens and during a commute. Environment international, 118, 266–273.
  • Miri, M., et al. 2016. Ecological risk assessment of heavy metal (HM) pollution in the ambient air using a new bio-indicator. Environmental science and pollution research, 23 (14), 14210–14220.
  • Miri, M., et al. 2018b. Probabilistic risk assessment of exposure to fluoride in most consumed brands of tea in the Middle East. Food and chemical toxicology, 115, 267–272.
  • Momtazan, M., et al. 2019. An investigation of particulate matter and relevant cardiovascular risks in Abadan and Khorramshahr in 2014–2016. Toxin reviews, 38 (4), 290–297.
  • Naseri, M., et al. 2015. Concentration of some heavy metals in rice types available in Shiraz market and human health risk assessment. Food Chemistry, 175, 243–248.
  • Pinto, E., Almeida, A., and Ferreira, I.M., 2016. Essential and non-essential/toxic elements in rice available in the Portuguese and Spanish markets. Journal of food composition and analysis, 48, 81–87.
  • Qu, C., et al. 2016. Probabilistic ecological risk assessment of heavy metals in sediments from China’s major aquatic bodies. Stochastic environmental research and risk assessment, 30 (1), 271–282.
  • Rabbani, D., et al. 2015. Evaluation of heavy metals in Iranian and Non-Iranian rice supplied by shopping centers of Kashan, Iran. International archives of health sciences, 2, 25–29.
  • Rahman, M.A., et al. 2014. Heavy metals in Australian grown and imported rice and vegetables on sale in Australia: health hazard. Ecotoxicology and environmental safety, 100, 53–60.
  • Rastmanesh, F., et al. 2016. Evaluation of heavy metal enrichment in wheat farms of. Ahvaz. environmental science and engineering, 5, 19–21.
  • Rebelo, F.M., and Caldas, E.D., 2016. Arsenic, lead, mercury and cadmium: Toxicity, levels in breast milk and the risks for breastfed infants. Environmental research, 151, 671–688.
  • Roca-Perez, L., et al. 2010. Selenium and heavy metals content in some Mediterranean soils. Journal of geochemical exploration, 107 (2), 110–116.
  • Roychowdhury, T., Tokunaga, H., and Ando, M., 2003. Survey of arsenic and other heavy metals in food composites and drinking water and estimation of dietary intake by the villagers from an arsenic-affected area of West Bengal, India. The science of the total environment, 308 (1–3), 15–35.
  • Saha, N., et al. 2016. Seasonal investigation of heavy metals in marine fishes captured from the Bay of Bengal and the implications for human health risk assessment. Food control, 70, 110–118.
  • Salakinkop, S., and Hunshal, C., 2014. Domestic sewage irrigation on dynamics of nutrients and heavy metals in soil and wheat (Triticum aestivum L.) production. International journal of recycling of organic waste in agriculture, 3 (3), 8.
  • Sanchooli Moghaddam, M., Rahdar, S., and Taghavi, M., 2016. Cadmium removal from aqueous solutions using saxaul tree ash. Iranian journal of chemistry and chemical engineering (IJCCE), 35, 45–52.
  • Satpathy, D., Reddy, M.V., and Dhal, S.P., 2014. Risk assessment of heavy metals contamination in paddy soil, plants, and grains (Oryza sativa L.) at the East Coast of India. BioMed research international, 2014, 545473.
  • Sharma, S., Nagpal, A.K., and Kaur, I., 2018. Heavy metal contamination in soil, food crops and associated health risks for residents of Ropar wetland, Punjab, India and its environs. Food chemistry, 255, 15–22.
  • Shokrzadeh, M., and Rokni, M.A., 2013. Lead, cadmium, and chromium concentrations in irrigation supply of/and tarom rice in central cities of Mazandaran Province-Iran. Journal of Mazandaran University of Medical Sciences, 23, 234–242.
  • Ullah, H., et al. 2017. Comparative study of heavy metals content in cosmetic products of different countries marketed in Khyber Pakhtunkhwa, Pakistan. Arabian journal of chemistry, 10, 10–18.
  • USEPA. 2001a. Risk assessment guidance for superfund: volume III-part a, process for conducting probabilistic risk assessment. Washington, DC: US Environmental Protection Agency, EPA 540-R-02-002.
  • USEPA. 2001b. Child–specific exposure factors handbook. Washington, DC: National Center for Environmental Association. EPA-600-P-00-0028.
  • USEPA. 2018. Progress toward transforming the integrated risk information system (IRIS) program: a 2018 evaluation. National Academies Press: US Environmental Protection Agency,
  • Weissmannová, H.D., and Pavlovský, J., 2017. Indices of soil contamination by heavy metals - methodology of calculation for pollution assessment (minireview). Environmental monitoring and assessment, 189 (12), 616).
  • Wu, B., et al. 2011. Health risk assessment of polycyclic aromatic hydrocarbons in the source water and drinking water of China: quantitative analysis based on published monitoring data. The science of the total environment, 410–411, 112–118.
  • Yearbook. 2017. Khuzestan province statistical. Available from: https://www.amar.org.ir [Accessed 30 November 2019].
  • Zazouli, M.A., et al. 2010. Investigation of cadmium and lead contents in Iranian rice cultivated in Babol region. Asian journal of chemistry, 22, 1369.
  • Zhao, K., et al. 2009. Modeling transfer of heavy metals in soil–rice system and their risk assessment in paddy fields. Environmental earth sciences, 59 (3), 519–527.
  • Zhao, L., et al. 2014. Source identification and health risk assessment of metals in urban soils around the Tanggu chemical industrial district, Tianjin, China. The science of the total environment, 468–469, 654–662.
  • Zhou, H., et al. 2016. Accumulation of heavy metals in vegetable species planted in contaminated soils and the health risk assessment. International journal of environmental research and public health, 13 (3), 289.

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