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Arsenic in cereals, their relation with human health risk, and possible mitigation strategies

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References

  • Mandal, B.K.; Suzuki, K.T. Arsenic round the world: A review. Talanta 2002, 58, 201–235.
  • Nriagu, J.O.; Bhattacharya, P.; Mukherjee, A.B.; Bundschuh, J.; Zevenhoven, R.; Loeppert, R.H. Arsenic in soil and groundwater: An overview. Trace Met. Other Contam. Environ. 2007, 9, 3–60.
  • Smedley, P.L.; Kinniburgh, D.G. A review of the source, behaviour and distribution of arsenic in natural waters. Appl. Geochem. 2002, 17, 517–568.
  • Murcott, S. Arsenic contamination in the world: An international sourcebook. IWA Publishing: London, UK, 2012.
  • Rahman, M.A.; Hasegawa, H.; Rahman, M.M.; Miah, M.A.M.; Tasmin, A. Arsenic accumulation in rice (Oryza sativa L.): Human exposure through food chain. Ecotoxicol. Environ. Safety 2008, 69, 317–324.
  • Dahal, B.M.; Fuerhacker, M.; Mentler, A.; Karki, K.B.; Shrestha, R.R.; Blum, W.E.H. Arsenic contamination of soils and agricultural plants through irrigation water in Nepal. Environ. Pollut. 2008, 155, 157–163.
  • Williams, P.N.; Price, A.H.; Raab, A.; Hossain, S.A.; Feldmann, J.; Meharg, A.A. Variation in arsenic speciation and concentration in paddy rice related to dietary exposure. Environ. Sci. Technol. 2005, 39, 5531–5540.
  • Ahiamadjie, H.; Serfor-Armah, Y.; Tandoh, J.B.; Gyampo, O.; Ofosu, F.G.; Dampare, S.B.; Adotey, D.K.; Nyarko, B.J. Evaluation of trace elements contents in staple foodstuffs from the gold mining areas in southwestern part of Ghana using neutron activation analysis. J. Radioanal. Nucl. Chem. 2011, 288, 653–661.
  • Bergqvist, C.; Herbert, R.; Persson, I.; Greger, M. Plants influence on arsenic availability and speciation in the rhizosphere, roots and shoots of three different vegetables. Environ. Pollut. 2014, 184, 540–546.
  • Rahman, M.A.; Hasegawa, H. High levels of inorganic arsenic in rice in areas where arsenic-contaminated water is used for irrigation and cooking. Sci. Total Environ. 2011, 409, 4645–4655.
  • Mandal, B.K.; Suzuki, K.T. Arsenic round the world: A review. Talanta 2002, 58, 201–235.
  • Bundschuh, J.; Nath, B.; Bhattacharya, P.; Liu, C.-W.; Armienta, M.A.; Lopez, M.V.M.; Lopez, D.L.; Jean, J.-S.; Cornejo, L.; Macedo, L.F.L. Arsenic in the human food chain: The Latin American perspective. Sci. Total Environ. 2012, 429, 92–106.
  • Pigna, M.; Cozzolino, V.; Giandonato Caporale, A.; Mora, M.L.; Di Meo, V.; Jara, A.A.; Violante, A. Effects of phosphorus fertilization on arsenic uptake by wheat grown in polluted soils. J. Soil Sci. Plant Nutr. 2010, 10, 428–442.
  • Pigna, M.; Cozzolino, V.; Violante, A.; Meharg, A.A. Influence of phosphate on the arsenic uptake by wheat (Triticum durum L.) irrigated with arsenic solutions at three different concentrations. Water Air Soil Pollut. 2009, 197, 371–380.
  • Rosas-Castor, J.M.; Guzmán-Mar, J.L.; Alfaro-Barbosa, J.M.; Hernández-Ramírez, A.; Pérez-Maldonado, I.N.; Caballero-Quintero, A.; Hinojosa-Reyes, L. Evaluation of the transfer of soil arsenic to maize crops in suburban areas of San Luis Potosi, Mexico. Sci. Total Environ. 2014, 497, 153–162.
  • Alam, M.G.M.; Snow, E.T.; Tanaka, A. Arsenic and heavy metal contamination of vegetables grown in Samta village, Bangladesh. Sci. Total Environ. 2003, 308, 83–96.
  • Roychowdhury, T.; Uchino, T.; Tokunaga, H.; Ando, M. Survey of arsenic in food composites from an arsenic-affected area of West Bengal, India. Food Chem. Toxicol. 2002, 40, 1611–1621.
  • Bhatti, S.M.; Anderson, C.W.N.; Stewart, R.B.; Robinson, B.H. Risk assessment of vegetables irrigated with arsenic-contaminated water. Environ. Sci. Processes Impacts 2013, 15, 1866–1875.
  • Zhao, F.-J.; McGrath, S.P.; Meharg, A.A. Arsenic as a food chain contaminant: Mechanisms of plant uptake and metabolism and mitigation strategies. Ann. Rev. Plant Biol. 2010, 61, 535–559.
  • Kloke, A.; Sauerbeck, D.R.; Vetter, H. The contamination of plants and soils with heavy metals and the transport of metals in terrestrial food chains. In Changing metal cycles and human health; Nriagu, J., Ed.; Springer: Berlin, Germany, 1984, pp 113–141.
  • Roychowdhury, T.; Tokunaga, H.; Uchino, T.; Ando, M. Effect of arsenic-contaminated irrigation water on agricultural land soil and plants in West Bengal, India. Chemosphere 2005, 58, 799–810.
  • Liu, X.; Zhang, S.; Shan, X.; Zhu, Y.-G. Toxicity of arsenate and arsenite on germination, seedling growth and amylolytic activity of wheat. Chemosphere 2005, 61, 293–301.
  • Ci, X.-k.; Liu, H.-l.; Hao, Y.-b.; Zhang, J.-w.; Liu, P.; Dong, S.-t. Arsenic distribution, species, and its effect on maize growth treated with arsenate. J. Integr. Agric. 2012, 11, 416–423.
  • Molina, M.; Escudey, M.; Chang, A.C.; Chen, W.; Arancibia-Miranda, N. Trace element uptake dynamics for maize (Zea mays L.) grown under field conditions. Plant Soil 2013, 370, 471–483.
  • Requejo, R.; Tena, M. Intra-specific variability in the response of maize to arsenic exposure. Environ. Sci. Pollut. Res. 2014, 1–9.
  • Rosas-Castor, J.M.; Guzmán-Mar, J.L.; Hernández-Ramírez, A.; Garza-González, M.T.; Hinojosa-Reyes, L. Arsenic accumulation in maize crop (Zea mays): A review. Sci. Total Environ. 2014, 488, 176–187.
  • Juliano, B.O. Rice in human nutrition. FAO Food and Nutrition Series, 26; Food and Agriculture Organization of the United Nations: Rome, 1993, pp 1–163.
  • USDA. Agricultural Research Service, Nutrient Data Laboratory. USDA National Nutrient Database for Standard Reference, Release 28. Version Current, September 2015. http://www.ars.usda.gov/nea/bhnrc/ndl.
  • Mosleh, M.K.; Hassan, Q.K.; Chowdhury, E.H. Application of remote sensors in mapping rice area and forecasting its production: A review. Sensors 2015, 15, 769–791.
  • Friedman, M. Rice brans, rice bran oils, and rice hulls: Composition, food and industrial uses, and bioactivities in humans, animals, and cells. J. Agric. Food Chem. 2014, 61, 10626–10641.
  • Hua, B.; Yan, W.; Wang, J.; Deng, B.; Yang, J. Arsenic accumulation in rice grains: Effects of cultivars and water management practices. Environ. Eng. Sci. 2011, 28, 591–596.
  • Masisi, K.; Beta, T.; Moghadasian, M.H. Antioxidant properties of diverse cereal grains: A review on in vitro and in vivo studies. Food Chem. 2016, 196, 90–97.
  • Davis, M.A.; Mackenzie, T.A.; Cottingham, K.L.; Gilbert-Diamond, D.; Punshon, T.; Karagas, M.R. Rice consumption and urinary arsenic concentrations in U.S. children. Environ. Health Perspect. 2012, 120, 1418–1424.
  • Meharg, A.A.; Sun, G.; Williams, P.N.; Adomako, E.; Deacon, C.; Zhu, Y.-G.; Feldmann, J.; Raab, A. Inorganic arsenic levels in baby rice are of concern. Environ. Pollut. 2008, 152, 746–749.
  • Signes-Pastor, A.J.; Deacon, C.; Jenkins, R.O.; Haris, P.I.; Carbonell-Barrachina, Ã.n.A.; Meharg, A.A. Arsenic speciation in Japanese rice drinks and condiments. J. Environ. Monit. 2009, 11, 1930–1934.
  • Baig, J.A.; Kazi, T.G.; Shah, A.Q.; Arain, M.B.; Afridi, H.I.; Khan, S.; Kandhro, G.A.; Soomro, A.S. Evaluating the accumulation of arsenic in maize (Zea mays L.) plants from its growing media by cloud point extraction. Food Chem. Toxicol. 2010, 48, 3051–3057.
  • Ma, J.F.; Yamaji, N.; Mitani, N.; Xu, X.-Y.; Su, Y.-H.; McGrath, S.P.; Zhao, F.-J. Transporters of arsenite in rice and their role in arsenic accumulation in rice grain. Proc. Natl. Acad. Sci. 2008, 105, 9931–9935.
  • Liu, W.-J.; Zhu, Y.G.; Hu, Y.; Williams, P.N.; Gault, A.G.; Meharg, A.A.; Charnock, J.M.; Smith, F.A. Arsenic sequestration in iron plaque, its accumulation and speciation in mature rice plants (Oryza sativa L.). Environ. Sci. Technol. 2006, 40, 5730–5736.
  • Azizur Rahman, M.; Hasegawa, H.; Mahfuzur Rahman, M.; Nazrul Islam, M.; Majid Miah, M.A.; Tasmen, A. Effect of arsenic on photosynthesis, growth and yield of five widely cultivated rice (Oryza sativa L.) varieties in Bangladesh. Chemosphere 2007, 67, 1072–1079.
  • Norton, G.J.; Islam, M.R.; Deacon, C.M.; Zhao, F.-J.; Stroud, J.L.; McGrath, S.P.; Islam, S.; Jahiruddin, M.; Feldmann, J.; Price, A.H. Identification of low inorganic and total grain arsenic rice cultivars from Bangladesh. Environ. Sci. Technol. 2009, 43, 6070–6075.
  • Tetens, I.; Hels, O.; Khan, N.I.; Thilsted, S.H.; Hassan, N. Rice-based diets in rural Bangladesh: How do different age and sex groups adapt to seasonal changes in energy intake? Am. J. Clin. Nutr. 2003, 78, 406–413.
  • Meharg, A.A.; Zhao, F.-J. Arsenic & rice. Springer Science + Business Media, 2012; p 171. http://dx.doi.org/10.1007/978-94-007-2947-6-2.
  • Ahmed, Z.U.; Panaullah, G.M.; Gauch Jr, H.; McCouch, S.R.; Tyagi, W.; Kabir, M.S.; Duxbury, J.M. Genotype and environment effects on rice (Oryza sativa L.) grain arsenic concentration in Bangladesh. Plant soil 2011, 338, 367–382.
  • Bae, M.; Watanabe, C.; Inaoka, T.; Sekiyama, M.; Sudo, N.; Bokul, M.H.; Ohtsuka, R. Arsenic in cooked rice in Bangladesh. Lancet 2002, 360, 1839–1840.
  • Khan, M.A.; Islam, M.R.; Panaullah, G.M.; Duxbury, J.M.; Jahiruddin, M.; Loeppert, R.H. Fate of irrigation-water arsenic in rice soils of Bangladesh. Plant soil 2009, 322, 263–277.
  • Khan, M.A.; Islam, M.R.; Panaullah, G.M.; Duxbury, J.M.; Jahiruddin, M.; Loeppert, R.H. Accumulation of arsenic in soil and rice under wetland condition in Bangladesh. Plant Soil 2010, 333, 263–274.
  • Panaullah, G.M.; Alam, T.; Hossain, M.B.; Loeppert, R.H.; Lauren, J.G.; Meisner, C.A.; Ahmed, Z.U.; Duxbury, J.M. Arsenic toxicity to rice (Oryza sativa L.) in Bangladesh. Plant Soil 2009, 317, 31–39.
  • Rahman, M.M.; Owens, G.; Naidu, R. Arsenic levels in rice grain and assessment of daily dietary intake of arsenic from rice in arsenic-contaminated regions of Bangladesh-implications to groundwater irrigation. Environ. Geochem. Health 2009, 31, 179–187.
  • Bhattacharya, P., Samal, A.C., Majumdar, J., Banerjee, S., and Santra, S.C. In vitro assessment on the impact of soil arsenic in the eight rice varieties of West Bengal, India. J. hazard. Mater. 2013, 262, 1091–1097.
  • Adomako, E.E.; Williams, P.N.; Deacon, C.; Meharg, A.A. Inorganic arsenic and trace elements in Ghanaian grain staples. Environ. Pollut. 2011, 159, 2435–2442.
  • Abedin, M.J.; Cotter-Howells, J.; Meharg, A.A. Arsenic uptake and accumulation in rice (Oryza sativa L.) irrigated with contaminated water. Plant Soil 2002, 240, 311–319.
  • Duxbury, J.M.; Mayer, A.B.; Lauren, J.G.; Hassan, N. Food chain aspects of arsenic contamination in Bangladesh: Effects on quality and productivity of rice. J. Environ. Sci. Health Part A 2003, 38, 61–69.
  • Simmonds, D.H. Inherent quality factors in wheat. Wheat and wheat quality in Australia. Melbourne: CSIRO, 1989; pp 31–61.
  • Zhao, F.-J.; Stroud, J.L.; Eagling, T.; Dunham, S.J.; McGrath, S.P.; Shewry, P.R. Accumulation, distribution, and speciation of arsenic in wheat grain. Environ. Sci. Technol. 2010, 44, 5464–5468.
  • Mellen, P.B.; Walsh, T.F.; Herrington, D.M. Whole grain intake and cardiovascular disease: A meta-analysis. Nutr. Metab. Cardiovasc. Dis. 2008, 18, 283–290.
  • Ye, E.Q.; Chacko, S.A.; Chou, E.L.; Kugizaki, M.; Liu, S. Greater whole-grain intake is associated with lower risk of type 2 diabetes, cardiovascular disease, and weight gain. J. Nutr. 2012, 142, 1304–1313.
  • D’Amato, M.; Aureli, F.; Ciardullo, S.; Raggi, A.; Cubadda, F. Arsenic speciation in wheat and wheat products using ultrasound-and microwave-assisted extraction and anion exchange chromatography-inductively coupled plasma mass spectrometry. J. Anal. At. Spectrom. 2011, 26, 207–213.
  • Leclercq, C.; Arcella, D.; Piccinelli, R.; Sette, S.; Le Donne, C. The Italian National Food Consumption Survey INRAN-SCAI 2005–06: Main results in terms of food consumption. Publ. Health Nutr. 2009, 12, 2504–2532.
  • Brackhage, C.; Huang, J.-H.; Schaller, J.; Elzinga, E.J.; Dudel, E.G. Readily available phosphorous and nitrogen counteract for arsenic uptake and distribution in wheat (Triticum aestivum L.). Sci. Rep. 2014, 4, 1–7.
  • Liu, Q.; Zheng, C.; Hu, C.X.; Tan, Q.; Sun, X.C.; Su, J.J. Effects of high concentrations of soil arsenic on the growth of winter wheat (Triticum aestivum L) and rape (Brassica napus). Plant Soil Environ. 2012, 58, 22–27.
  • Shumaker, K.L.; Begonia, G. Heavy metal uptake, translocation, and bioaccumulation studies of Triticum aestivum cultivated in contaminated dredged materials. Int. J. Environ. Res. Publ. Health 2005, 2, 293–298.
  • Zhu, Y.-G.; Geng, C.-n.; Tong, Y.-P.; Smith, S.E.; Smith, F.A. Phosphate (Pi) and arsenate uptake by two wheat (Triticum aestivum) cultivars and their doubled haploid lines. Ann. Bot. 2006, 98, 631–636.
  • Mahdieh, S.; Ghaderian, S.M.; Karimi, N. Effect of arsenic on germination, photosynthesis and growth parameters of two winter wheat varieties in Iran. J. Plant Nutr. 2013, 36, 651–664.
  • Li, C.-x.; Feng, S.-l.; Shao, Y.; Jiang, L.-n.; Lu, X.-y.; Hou, X.-l. Effects of arsenic on seed germination and physiological activities of wheat seedlings. J. Environ. Sci. 2007, 19, 725–732.
  • Liu, W.X.; Liu, J.W.; Wu, M.Z.; Li, Y.; Zhao, Y.; Li, S.R. Accumulation and translocation of toxic heavy metals in winter wheat (Triticum aestivum L.) growing in agricultural soil of Zhengzhou, China. Bull. Environ. Contam. Toxicol. 2009, 82, 343–347.
  • Bhattacharya, P.; Samal, A.C. Majumdar, J.; Santra, S.C. Arsenic contamination in rice, wheat, pulses, and vegetables: A study in an arsenic affected area of West Bengal, India. Water Air Soil Pollut. 2010, 213, 3–13.
  • Cubadda, F.; Ciardullo, S.; D’Amato, M.; Raggi, A.; Aureli, F.; Carcea, M. Arsenic contamination of the environment−food chain: A survey on wheat as a test plant to investigate phytoavailable arsenic in Italian agricultural soils and as a source of inorganic arsenic in the diet. J. Agric. Food Chem. 2010, 58, 10176–10183.
  • Tong, J.; Guo, H.; Wei, C. Arsenic contamination of the soil-wheat system irrigated with high arsenic groundwater in the Hetao Basin, Inner Mongolia, China. Sci. Total Environ. 2014, 496, 479–487.
  • Shi, G.L.; Lou, L.Q.; Zhang, S.; Xia, X.W.; Cai, Q.S. Arsenic, copper, and zinc contamination in soil and wheat during coal mining, with assessment of health risks for the inhabitants of Huaibei, China. Environ. Sci. Pollut. Res. 2013, 20, 8435–8445.
  • Williams, P.N.; Villada, A.; Deacon, C.; Raab, A.; Figuerola, J.; Green, A.J.; Feldmann, J.R.; Meharg, A.A. Greatly enhanced arsenic shoot assimilation in rice leads to elevated grain levels compared to wheat and barley. Environ. Sci. Technol. 2007, 41, 6854–6859.
  • Li, F.; Zheng, Y.M.; He, J.-Z. Effect of long-term fertilization on total soil arsenic in China. Ann. N Y. Acad. Sci. 2010, 1195, E65–E73.
  • Arain, M.B.; Kazi, T.G.; Baig, J.A.; Jamali, M.K.; Afridi, H.I.; Shah, A.Q.; Jalbani, N.; Sarfraz, R.A. Determination of arsenic levels in lake water, sediment, and foodstuff from selected area of Sindh, Pakistan: Estimation of daily dietary intake. Food Chem. Toxicol. 2009, 47, 242–248.
  • Su, Y.-H.; McGrath, S.P.; Zhao, F.-J. Rice is more efficient in arsenite uptake and translocation than wheat and barley. Plant Soil 2010, 328, 27–34.
  • Liu, Q.; Hu, C.; Tan, Q.; Sun, X.; Su, J.; Liang, Y. Effects of As on As uptake, speciation, and nutrient uptake by winter wheat (Triticum aestivum L.) under hydroponic conditions. J. Environ. Sci. 2008, 20, 326–331.
  • Ranum, P.; Peña-Rosas, J.P.; Garcia-Casal, M.N. Global maize production, utilization, and consumption. Ann. N Y. Acad. Sci. 2014, 1312, 105–112.
  • Ding, D.; Li, W.; Song, G.; Qi, H.; Liu, J.; Tang, J. Identification of QTLs for arsenic accumulation in maize (Zea mays L.) using a RIL population. PloS One 2011, 6, e25646.
  • Liu, Z.H.; Li, W.H.; Qi, H.Y.; Song, G.L.; Ding, D.; Fu, Z.Y.; Liu, J.B.; Tang, J.H. Arsenic accumulation and distribution in the tissues of inbred lines in maize (Zea mays L.). Genetic Resour Crop Evol. 2012, 59, 1705–1711.
  • Liu, H.; Probst, A.; Liao, B. Metal contamination of soils and crops affected by the Chenzhou lead/zinc mine spill (Hunan, China). Sci. Total Environ. 2005, 339, 153–166.
  • Marwa, E.M.M.; Meharg, A.A.; Rice, C.M. Risk assessment of potentially toxic elements in agricultural soils and maize tissues from selected districts in Tanzania. Sci. Total Environ. 2012, 416, 180–186.
  • Mallick, S.; Sinam, G.; Sinha, S. Study on arsenate tolerant and sensitive cultivars of Zea mays L.: Differential detoxification mechanism and effect on nutrients status. Ecotoxicol. Environ. Safety 2011, 74, 1316–1324.
  • Parsons, J.G.; Martinez-Martinez, A.; Peralta-Videa, J.R.; Gardea-Torresdey, J.L. Speciation and uptake of arsenic accumulated by corn seedlings using XAS and DRC-ICP-MS. Chemosphere 2008, 70, 2076–2083.
  • Castro-Larragoitia, J.; Kramar, U.; Puchelt, H. 200 years of mining activities at La Paz/San Luis Potosí/Mexico—consequences for environment and geochemical exploration. J. Geochem. Explor. 1997, 58, 81–91.
  • Mishra, B.K.; Dubey, C.S.; Shukla, D.P.; Bhattacharya, P.; Usham, A.L. Concentration of arsenic by selected vegetables cultivated in the Yamuna flood plains (YFP) of Delhi, India. Environ. Earth Sci. 2014, 72, 3281–3291.
  • Abbas, M.H.H.; Abdelhafez, A.A. Role of EDTA in arsenic mobilization and its uptake by maize grown on an As-polluted soil. Chemosphere 2013, 90, 588–594.
  • Almaroai, Y.A.; Usman, A.R.A.; Ahmad, M.; Kim, K.-R.; Vithanage, M.; Sik Ok, Y. Role of chelating agents on release kinetics of metals and their uptake by maize from chromated copper arsenate-contaminated soil. Environ. Technol. 2013, 34, 747–755.
  • Drličková, G.; Vaculík, M.; Matejkovič, P.; Lux, A. Bioavailability and toxicity of arsenic in maize (Zea mays L.) grown in contaminated soils. Bull. Environ. Contam. Toxicol. 2013, 91, 235–239.
  • Yu, Y.; Zhang, S.; Huang, H.; Luo, L.; Wen, B. Arsenic accumulation and speciation in maize as affected by inoculation with arbuscular mycorrhizal fungus Glomus mosseae. J. Agric. Food Chem. 2009, 57, 3695–3701.
  • Uvere, P.O.; Ene-Obong, H.N. Complementary local foods for infants in developing countries. In Nutrition in infancy; Watson, R.R.; Grimble, G.; Preedy, V.R., Eds.; Springer: New York, NY, 2013; pp 75–93.
  • Behall, K.M.; Scholfield, D.J.; Hallfrisch, J. Lipids significantly reduced by diets containing barley in moderately hypercholesterolemic men. J Am. Coll. Nutr. 2004, 23, 55–62.
  • Dago, À.; González, I.; Ariño, C.; Díaz-Cruz, J.M.; Esteban, M. Chemometrics applied to the analysis of induced phytochelatins in Hordeum vulgare plants stressed with various toxic non-essential metals and metalloids. Talanta 2014, 118, 201–209.
  • Sanal, F.; Şeren, G.; Güner, U. Effects of Arsenate and Arsenite on Germination and Some Physiological Attributes of Barley Hordeum vulgare L. Bull. Environ. Contam. Toxicol. 2014, 92, 483–489.
  • Shaibur, M.R.; Adjadeh, T.A.; Kawai, S. Effect of phosphorus on the concentrations of arsenic, iron and some other elements in barley grown hydroponically. J. Soil Sci. Plant Nutr. 2013, 13, 79–85.
  • Zelinová, V.; Alemayehu, A.; Bočová, B.; Huttová, J.; Mistrík, I.; Tamás, L. Primary stress response induced by different elements is mediated through auxin signalling in barley root tip. Acta Physiologiae Plantarum 2014, 36, 2935–2946.
  • Christophersen, H.M.; Smith, F.A.; Smith, S.E. Arbuscular mycorrhizal colonization reduces arsenate uptake in barley via downregulation of transporters in the direct epidermal phosphate uptake pathway. New Phytol. 2009, 184, 962–974.
  • Hejcman, M.; Berková, M.; Kunzová, E. Effect of long-term fertilizer application on yield and concentrations of elements (N, P, K, Ca, Mg, As, Cd, Cu, Cr, Fe, Mn, Ni, Pb, Zn) in grain of spring barley. Plant Soil Environ. 2013, 59, 329–334.
  • Baig, J.A.; Kazi, T.G.; Shah, A.Q.; Afridi, H.I.; Kandhro, G.A.; Khan, S.; Kolachi, N.F.; Wadhwa, S.K.; Shah, F.; Arain, M.B. Evaluation of arsenic levels in grain crops samples, irrigated by tube well and canal water. Food Chem. Toxicol. 2011, 49, 265–270.
  • IARC. IARC monographs on the evaluation of carcinogenic risks to humans: Volume 100C: A review of human carcinogens: Arsenic, metals, fibres, and dusts. International Agency for Research on Cancer: Lyon, 2012.
  • Huang, R.-Q.; Gao, S.-F.; Wang, W.-L.; Staunton, S.; Wang, G. Soil arsenic availability and the transfer of soil arsenic to crops in suburban areas in Fujian Province, southeast China. Sci. Total Environ. 2006, 368, 531–541.
  • Li, Q.; Chen, Y.; Fu, H.; Cui, Z.; Shi, L.; Wang, L.; Liu, Z. Health risk of heavy metals in food crops grown on reclaimed tidal flat soil in the Pearl River Estuary, China. J. hazard. Mater. 2012, 227, 148–154.
  • Liao, X.-Y.; Chen, T.-B.; Xie, H.; Liu, Y.-R. Soil As contamination and its risk assessment in areas near the industrial districts of Chenzhou City, Southern China. Environ. Int. 2005, 31, 791–798.
  • Schoof, R.A.; Yost, L.J.; Eickhoff, J.; Crecelius, E.A.; Cragin, D.W.; Meacher, D.M.; Menzel, D.B. A market basket survey of inorganic arsenic in food. Food Chem. Toxicol. 1999, 37, 839–846.
  • WHO. Toxicological evaluation of certain food additives and contaminants, Ser. No. 24. WHO Food Addit: Geneva, 1989.
  • Signes-Pastor, A.J.; Al-Rmalli, S.W.; Jenkins, R.O.; Carbonell‐Barrachina, Ã.n.A.; Haris, P.I. Arsenic bioaccessibility in cooked rice as affected by arsenic in cooking water. J. Food Sci. 2012, 77, T201–T206.
  • CFSA. Maximum levels of contaminants in Food. GB 2762–2005. Chinese Food Standards Agency: Beijing, 2005.
  • ANZFA. Standard 1.4.1 –Contaminants and Natural Toxicants. Federal Register of Legislative Instruments F2011C00542, Issue 124, 2011.
  • Awashthi, S.K. Prevention of food Adulteration Act no 37 of 1954. Central and State rules as amended for 2000, 1999.
  • Li, G.; Sun, G.-X.; Williams, P.N.; Nunes, L.; Zhu, Y.-G. Inorganic arsenic in Chinese food and its cancer risk. Environ. Int. 2011, 37, 1219–1225.
  • Gulz, P.A.; Gupta, S.-K.; Schulin, R. Arsenic accumulation of common plants from contaminated soils. Plant Soil 2005, 272, 337–347.
  • WHO. Guidelines for drinking-water quality. Volume 1: Recommendations, 2nd edn. WHO: Geneva, 1993.
  • Meharg, A.A.; Williams, P.N.; Adomako, E.; Lawgali, Y.Y.; Deacon, C.; Villada, A.; Cambell, R.C.J.; Sun, G.; Zhu, Y.-G.; Feldmann, J. Geographical variation in total and inorganic arsenic content of polished (white) rice. Environ. Sci. Technol. 2009, 43, 1612–1617.
  • Al-Rmalli, S.W.; Haris, P.I.; Harrington, C.F.; Ayub, M. A survey of arsenic in foodstuffs on sale in the United Kingdom and imported from Bangladesh. Sci. Total Environ. 2005, 337, 23–30.
  • Meharg, A.A.; Rahman, M.M. Arsenic contamination of Bangladesh paddy field soils: Implications for rice contribution to arsenic consumption. Environ. Sci. Technol. 2003, 37, 229–234.
  • Ahsan, H.; Chen, Y.; Parvez, F.; Zablotska, L.; Argos, M.; Hussain, I.; Momotaj, H.; Levy, D.; Cheng, Z.; Slavkovich, V. Arsenic exposure from drinking water and risk of premalignant skin lesions in Bangladesh: Baseline results from the Health Effects of Arsenic Longitudinal Study. Am. J. Epidemiol. 2006, 163, 1138–1148.
  • Tseng, W.-P. Effects and dose–response relationships of skin cancer and blackfoot disease with arsenic. Environ. Health Perspect. 1977, 19, 109.
  • Banerjee, M.; Bhattacharjee, P.; Giri, A.K. Arsenic-induced cancers: A review with special reference to gene, environment and their interaction. Genes Environ. 2011, 33, 128–140.
  • Moon, K.A.; Guallar, E.; Umans, J.G.; Devereux, R.B.; Best, L.G.; Francesconi, K.A.; Goessler, W.; Pollak, J.; Silbergeld, E.K.; Howard, B.V. Association between exposure to low to moderate arsenic levels and incident cardiovascular disease: A prospective cohort study. Ann. Internal Med. 2013, 159, 649–659.
  • Mazumder, D.N.G.; Haque, R.; Ghosh, N.; De Binay, K.; Santra, A.; Chakraborti, D.; Smith, A.H. Arsenic in drinking water and the prevalence of respiratory effects in West Bengal, India. Int. J. Epidemiol. 2000, 29, 1047–1052.
  • Tyler, C.R.; Allan, A.M. The effects of arsenic exposure on neurological and cognitive dysfunction in human and rodent studies: A review. Curr. Environ. Health Rep 2014, 132–147.
  • Mazumder, D.G.; Dasgupta, U.B. Chronic arsenic toxicity: Studies in West Bengal, India. Kaohsiung J. Med. Sci. 2011, 27, 360–370.
  • Mazumder, D.N.G. Effect of chronic intake of arsenic-contaminated water on liver. Toxicol. Appl. Pharmacol. 2005, 206, 169–175.
  • Hopenhayn, C., Huang, B., Christian, J., Peralta, C., Ferreccio, C., Atallah, R., and Kalman, D. Profile of urinary arsenic metabolites during pregnancy. Environ. Health Perspect. 2003, 111, 1888.
  • Rahman, A.; Persson, L.-Å.; Nermell, B.; El Arifeen, S.; Ekström, E.-C.; Smith, A.H.; Vahter, M. Arsenic exposure and risk of spontaneous abortion, stillbirth, and infant mortality. Epidemiology 2010, 21, 797–804.
  • Hasnat, M.A. Assessment of arsenic mitigation options; adverse pregnancy outcomes due to chronic arsenic exposure; and the impact of nutritional status on development of arsenicosis in Bangladesh, Australian National University, 2005.
  • Steinmaus, C.; Yuan, Y.; Bates, M.N.; Smith, A.H. Case-control study of bladder cancer and drinking water arsenic in the western United States. Am. J. Epidemiol. 2003, 158, 1193–1201.
  • Ahsan, H.; Chen, Y.; Parvez, F.; Argos, M.; Hussain, A.I.; Momotaj, H.; Levy, D.; Van Geen, A.; Howe, G.; Graziano, J. Health Effects of Arsenic Longitudinal Study (HEALS): Description of a multidisciplinary epidemiologic investigation. J. Exposure Sci. Environ. Epidemiol. 2006, 16, 191–205.
  • Chen, Y.; Ahsan, H. Cancer burden from arsenic in drinking water in Bangladesh. Am. J. Publ. Health 2004, 94, 741.
  • Pimparkar, B.D.; Bhave, A. Arsenicosis: Review of recent advances. J. Assoc. Phys. India 2010, 58, 617–624.
  • Rahman, M.M.; Naidu, R.; Bhattacharya, P. Arsenic contamination in groundwater in the Southeast Asia region. Environ. Geochem. Health 2009, 31, 9–21.
  • Smith, A.H.; Marshall, G.; Liaw, J.; Yuan, Y.; Ferreccio, C.; Steinmaus, C. Mortality in young adults following in utero and childhood exposure to arsenic in drinking water. Environ. Health Perspect. 2012, 120, 1527–1531.
  • Aballay, L.R.; Díaz, M.d.P.; Francisca, F.M.; Muñoz, S.E. Cancer incidence and pattern of arsenic concentration in drinking water wells in Córdoba, Argentina. Int. J. Environ. Health Res. 2012, 22, 220–231.
  • Joseph, T.; Dubey, B.; McBean, E.A. Human health risk assessment from arsenic exposures in Bangladesh. Sci. Total Environ. 2015, 527–528, 552–560.
  • Bundschuh, J.; García, M.E.; Birkle, P.; Cumbal, L.H.; Bhattacharya, P.; Matschullat, J. Occurrence, health effects and remediation of arsenic in groundwaters of Latin America. In Natural arsenic in groundwater of Latin America; Bundschuh, J., Armienta, M.A.; Birkle, P; Bhattacharya, P.; Matschullat, J.; Mukherjee, A.B., Eds.; CRC Press/Balkema Publisher: Leiden, The Netherlands, 2009; pp. 3–15.
  • Kapaj, S.; Peterson, H.; Liber, K.; Bhattacharya, P. Human health effects from chronic arsenic poisoning–a review. J. Environ. Sci. Health Part A 2006, 41, 2399–2428.
  • Nordstrom, D.K. Worldwide occurrences of arsenic in ground water. Science(Washington) 2002, 296, 2143–2145.
  • Basu, B.; Kundu, M.; Hedayatullah, M.; Kundu, C.K.; Bandyopadhyay, P.; Bhattacharya, K.; Sarkar, S. Mitigation of arsenic in rice through deficit irrigation in field and use of filtered water in kitchen. Int. J. Environ. Sci. Technol. 2015, 12, 2065–2070.
  • Rahman, M.A.; Hasegawa, H.; Rahman, M.A.; Rahman, M.M.; Miah, M.A. Influence of cooking method on arsenic retention in cooked rice related to dietary exposure. Sci. Total Environ. 2006, 370, 51–60.
  • Liu, C.W.; Lin, C.C.; Jang, C.S.; Sheu, G.R.; Tsui, L. Arsenic accumulation by rice grown in soil treated with roxarsone. J. Plant Nutr. Soil Sci. 2009, 172, 550–556.
  • Wang, F.-M.; Chen, Z.-L.; Zhang, L.; Gao, Y.-L.; Sun, Y.-X. Arsenic uptake and accumulation in rice (Oryza sativa L.) at different growth stages following soil incorporation of roxarsone and arsanilic acid. Plant Soil 2006, 285, 359–367.
  • Spanu, A.; Daga, L.; Orlandoni, A.M.; Sanna, G. The role of irrigation techniques in arsenic bioaccumulation in rice (Oryza sativa L.). Environ. Sci. Technol. 2012, 46, 8333–8340.
  • Rahman, M.A.; Hasegawa, H. Aquatic arsenic: Phytoremediation using floating macrophytes. Chemosphere 2011, 83, 633–646.
  • Norton, G.J.; Adomako, E.E.; Deacon, C.M.; Carey, A.-M.; Price, A.H.; Meharg, A.A. Effect of organic matter amendment, arsenic amendment and water management regime on rice grain arsenic species. Environ. Pollut. 2013, 177, 38–47.
  • Sengupta, M.K.; Hossain, M.A.; Mukherjee, A.; Ahamed, S.; Das, B.; Nayak, B.; Pal, A.; Chakraborti, D. Arsenic burden of cooked rice: Traditional and modern methods. Food Chem. Toxicol. 2006, 44, 1823–1829.
  • Mihucz, V.G.; Tatar, E.; Virág, I.n.; Zang, C.; Jao, Y.; Záray, G. Arsenic removal from rice by washing and cooking with water. Food Chem. 2007, 105, 1718–1725.
  • O’Neill, A.; Phillips, D.H.; Kok, S.; Chea, E.; Seng, B.; Sen Gupta, B. Arsenic in groundwater and its influence on exposure risks through traditionally cooked rice in Prey Vêng Province, Cambodia. J. Hazard. Mater. 2013, 262, 1072–1079.
  • Raab, A.; Baskaran, C.; Feldmann, J.; Meharg, A.A. Cooking rice in a high water to rice ratio reduces inorganic arsenic content. J. Environ. Monit. 2009, 11, 41–44.
  • Fleck, A.T.; Mattusch, J. r.; Schenk, M.K. Silicon decreases the arsenic level in rice grain by limiting arsenite transport. J. Plant Nutr. Soil Sci. 2013, 176, 785–794.
  • Lou-Hing, D.; Zhang, B.; Price, A.H.; Meharg, A.A. Effects of phosphate on arsenate and arsenite sensitivity in two rice (Oryza sativa L.) cultivars of different sensitivity. Environ. Exp. Bot. 2011, 72, 47–52.
  • Meharg, A.A. Arsenic in rice-understanding a new disaster for South-East Asia. Trends Plant Sci. 2004, 9, 415–417.
  • Zhao, F.-J.; Zhu, Y.-G.; Meharg, A.A. Methylated arsenic species in rice: Geographical variation, origin, and uptake mechanisms. Environ. Sci. Technol. 2013, 47, 3957–3966.
  • Panda, S.K.; Upadhyay, R.K.; Nath, S. Arsenic stress in plants. J. Agron. Crop Sci. 2010, 196, 161–174.
  • Talukder, A.; Meisner, C.A.; Sarkar, M.A.R.; Islam, M.S. Effect of water management, tillage options and phosphorus status on arsenic uptake in rice. Ecotoxicol. Environ. Safety 2011, 74, 834–839.
  • Talukder, A.; Meisner, C.A.; Sarkar, M.A.R.; Islam, M.S.; Sayre, K.D.; Duxbury, J.M.; Lauren, J.G. Effect of water management, arsenic and phosphorus levels on rice in a high-arsenic soil-water system: II. Arsenic uptake. Ecotoxicol. Environ. Safety 2012, 80, 145–151.
  • Liu, W.-J.; Zhu, Y.-G.; Smith, F.A.; Smith, S.E. Do iron plaque and genotypes affect arsenate uptake and translocation by rice seedlings (Oryza sativa L.) grown in solution culture? J. Exp. Bot. 2004, 55, 1707–1713.
  • Mei, X.Q.; Wong, M.H.; Yang, Y.; Dong, H.Y.; Qiu, R.L.; Ye, Z.H. The effects of radial oxygen loss on arsenic tolerance and uptake in rice and on its rhizosphere. Environ. Pollut. 2012, 165, 109–117.
  • Pan, W.; Wu, C.; Xue, S.; Hartley, W. Arsenic dynamics in the rhizosphere and its sequestration on rice roots as affected. Technology 2014, 36, 962–968.
  • Song, R.; Zhao, C.-Y.; Liu, J.; Zhang, J.; Du, Y.-X.; Li, J.-Z.; Sun, H.-Z.; Zhao, H.-B.; Zhao, Q.-Z. Effect of sulphate nutrition on arsenic translocation and photosynthesis of rice seedlings. Acta Physiologiae Plantarum 2013, 35, 3237–3243.
  • Lyubun, Y.V.; Fritzsche, A.; Chernyshova, M.P.; Dudel, E.G.; Fedorov, E.E. Arsenic transformation by Azospirillum brasilense Sp245 in association with wheat (Triticum aestivum L.) roots. Plant Soil 2006, 286, 219–227.
  • Hu, X.; Kang, J.; Lu, K.; Zhou, R.; Mu, L.; Zhou, Q. Graphene oxide amplifies the phytotoxicity of arsenic in wheat. Sci. Rep. 2014, 4, 1–10.
  • Buchet, J.-P.; Lauwerys, R.; Roels, H. Comparison of several methods for the determination of arsenic compounds in water and in urine. Int. Arch. Occupational Environ. Health 1980, 46, 11–29.
  • Charbonneau, S.M.; Tam, G.K.H.; Bryce, F.; Zawidzka, Z.; Sandi, E. Metabolism of orally administered inorganic arsenic in the dog. Toxicol. Lett. 1979, 3, 107–113.
  • Dogheim, S.M.; Ashraf, E.M.M.; Alla, S.A.G.; Khorshid, M.A.; Fahmy, S.M. Pesticides and heavy metals levels in Egyptian leafy vegetables and some aromatic medicinal plants. Food Addit. Contam. 2004, 21, 323–330.
  • Islam, G.M.R.; Khan, F.E.; Hoque, M.M.; Jolly, Y.N. Consumption of unsafe food in the adjacent area of Hazaribag tannery campus and Buriganga River embankments of Bangladesh: Heavy metal contamination. Environ. Monit. Assess. 2014, 186, 7233–7244.
  • Carbonell-Barrachina, Á.A.; Wu, X.; Ramírez-Gandolfo, A.; Norton, G.J.; Burló, F.; Deacon, C.; Meharg, A.A. Inorganic arsenic contents in rice-based infant foods from Spain, UK, China and USA. Environ. Pollut. 2012, 163, 77–83.
  • Williams, P.N.; Islam, M.R.; Adomako, E.E.; Raab, A.; Hossain, S.A.; Zhu, Y.G.; Feldmann, J.; Meharg, A.A. Increase in rice grain arsenic for regions of Bangladesh irrigating paddies with elevated arsenic in groundwaters. Environ. Sci. Technol. 2006, 40, 4903–4908.
  • Batista B.L.; Souza, J.M.O.; De Souza, S.S.; Barbosa Jr, F. Speciation of arsenic in rice and estimation of daily intake of different arsenic species by Brazilians through rice consumption. J. hazard. Mater. 2011, 191, 342–348.
  • Mondal, D.; Polya, D.A. Rice is a major exposure route for arsenic in Chakdaha block, Nadia district, West Bengal, India: A probabilistic risk assessment. Appl. Geochem. 2008, 23, 2987–2998.
  • Sommella, A.; Deacon, C.; Norton, G.; Pigna, M.; Violante, A.; Meharg, A.A. Total arsenic, inorganic arsenic, and other elements concentrations in Italian rice grain varies with origin and type. Environ. Pollut. 2013, 181, 38–43.
  • Rahman, M.A.; Rahman, M.M.; Reichman, S.M.; Lim, R.P.; Naidu, R. Arsenic speciation in Australian grown and imported rice on sale in Australia: Implication for human health risk. J. Agric. Food Chem. 2014, 62, 6016–6024.
  • Tseng, C.-H.; Huang, Y.-K.; Huang, Y.-L.; Chung, C.-J.; Yang, M.-H.; Chen, C.-J.; Hsueh, Y.-M. Arsenic exposure, urinary arsenic speciation, and peripheral vascular disease in blackfoot disease-hyperendemic villages in Taiwan. Toxicol. Appl. Pharmacol. 2005, 206, 299–308.
  • Lin, H.-T.; Wong, S.-S.; Li, G.-C. Heavy metal content of rice and shellfish in Taiwan. J. Food Drug Anal, 2004, 12, 167–174.
  • Antoine, J.M.R.; Hoo Fung, L.A.; Grant, C.N.; Dennis, H.T.; Lalor, G.C. Dietary intake of minerals and trace elements in rice on the Jamaican market. J. Food Compos. Anal. 2012, 26, 111–121.
  • Zavala, Y.J.; Duxbury, J.M. Arsenic in rice: I. Estimating normal levels of total arsenic in rice grain. Environ. Sci. Technol. 2008, 42, 3856–3860.
  • Zavala, Y.J.; Gerads, R.; Gürleyük, H.; Duxbury, J.M. Arsenic in rice: II. Arsenic speciation in USA grain and implications for human health. Environ. Sci. Technol. 2008, 42, 3861–3866.

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