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Toxic Elements in Bangladesh’s Drinking Water

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Environmental Contaminants: Ecological Implications and Management

Part of the book series: Microorganisms for Sustainability ((MICRO,volume 14))

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Abstract

Increasing exposure to heavy metal contamination in aquatic environment can have serious health consequences in Bangladesh. Although a shift from using surface water to groundwater significantly reduced waterborne diseases in Bangladesh, vast areas of Bangladesh are affected by groundwater arsenic contamination above WHO drinking water guideline. There are also some other emerging contaminants in drinking water which have not historically been considered as pollutants but are now being more widely detected. Millions of Bangladeshis are drinking water with unsafe levels of arsenic (As), manganese (Mn), boron (B), barium (Ba), chromium (Cr), molybdenum (Mo), nickel (Ni), lead (Pb), or uranium (Ur). Approximately, 45% area of Bangladesh contains groundwater with As concentration greater than the standard limit for Bangladesh drinking water. Manganese, Pb, Ni, and Cr are also found at significant concentrations in groundwater. About 50%, 3%, <1%, and <1% of Bangladesh’s area exceeds WHO guidelines for Mn, Pb, Ni, and Cr, respectively. Besides these, concentrations of Cd and B are higher than the safe value in river water which might create an adverse effect on riparian ecosystem. Most groundwater contamination originates either as point source or nonpoint source. Urban areas contribute more pollutants to groundwater than non-urban areas. Industrial areas are more adversely affected by heavy metals compared to non-industrial areas. These emerging contaminants in the form of heavy metals pose significant human health risks. In order to understand the significance of public health strategy of safe drinking water, a thorough review of emerging contaminants in drinking water, its toxicity, and health hazards, as well as future directions toward sustainable development goals (SDGs), is necessary.

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References

  • Ahmed MF (2001) An overview of arsenic removal technologies in Bangladesh and India. In: Proceedings of BUET-UNU international workshop on technologies for arsenic removal from drinking water, Dhaka. pp 5–7

    Google Scholar 

  • Ahmed MF, Ahuja S, Alauddin M, Hug SJ, Lloyd JR, Pfaff A, Pichler T, Saltikov C, Stute M, Van Geen A (2006) Ensuring safe drinking water in Bangladesh. Science 314:1687–1688

    Article  CAS  Google Scholar 

  • Ahmed MK, Baki MA, Islam MS, Kundu GK, Habibullah-Al-Mamun M, Sarkar SK, Hossain MM (2015a) Human health risk assessment of heavy metals in tropical fish and shellfish collected from the river Buriganga, Bangladesh. Environ Sci Pollut Res 22:15880–15890

    Article  CAS  Google Scholar 

  • Ahmed MK, Shaheen N, Islam MS, Habibullah-Al-Mamun M, Islam S, Banu CP (2015b) Trace elements in two staple cereals (rice and wheat) and associated health risk implications in Bangladesh. Environ Monit Assess 187:326

    Article  CAS  Google Scholar 

  • Aktaruzzaman M, Chowdhury M, Fardous Z, Alam M, Hossain M, Fakhruddin A (2014) Ecological risk posed by heavy metals contamination of ship breaking yards in Bangladesh. Int J Environ Res 8:469–478

    Google Scholar 

  • Akter T, Jhohura FT, Akter F, Chowdhury TR, Mistry SK, Dey D, Barua MK, Islam MA, Rahman M (2016) Water quality index for measuring drinking water quality in rural Bangladesh: a cross-sectional study. J Health Popul Nutr 35:4

    Article  Google Scholar 

  • Alaerts G, Khouri N, Kabir B (2001) Strategies to mitigate arsenic contamination of water supply. Arsenic in drinking water. United Nations synthesis report on arsenic in drinking water. Available: http://www.who.int/water_sanitation_health/dwq/arsenicun8. pdf. Accessed 4 June 2005

  • Ali MM, Ali ML, Islam MS, Rahman MZ (2016) Preliminary assessment of heavy metals in water and sediment of Karnaphuli River, Bangladesh. Environ Nanotechnol Monitor Manag 5:27–35

    Article  Google Scholar 

  • Argos M, Kalra T, Rathouz PJ, Chen Y, Pierce B, Parvez F, Islam T, Ahmed A, Rakibuz-Zaman M, Hasan R (2010) Arsenic exposure from drinking water, and all-cause and chronic-disease mortalities in Bangladesh (HEALS): a prospective cohort study. Lancet 376:252–258

    Article  CAS  Google Scholar 

  • ATSDR (2015) Toxicological profiles. Agency for Toxic Substances and Disease Registry

    Google Scholar 

  • Bacquart T, Bradshaw K, Frisbie S, Mitchell E, Springston G, Defelice J, Dustin H, Sarkar B (2012) A survey of arsenic, manganese, boron, thorium, and other toxic metals in the groundwater of a West Bengal, India neighbourhood. Metallomics 4:653–659

    Article  CAS  Google Scholar 

  • Bawaskar HS, Himmatrao Bawaskar P, Himmatrao Bawaskar P (2010) Chronic renal failure associated with heavy metal contamination of drinking water: a clinical report from a small village in Maharashtra. Clin Toxicol 48:768–768

    Article  Google Scholar 

  • Beckie R (2013) Groundwater. Reference Module in Earth Systems and Environmental Sciences

    Google Scholar 

  • Berg M, Luzi S, Trang PTK, Viet PH, Giger W, Stüben D (2006) Arsenic removal from groundwater by household sand filters: comparative field study, model calculations, and health benefits. Environ Sci Technol 40:5567–5573

    Article  CAS  Google Scholar 

  • Bernard A (2008) Cadmium & its adverse effects on human health. Indian J Med Res 128:557

    CAS  Google Scholar 

  • BGS & DPHE (2001a) Arsenic contamination of groundwater in Bangladesh: Final report. BGS Technical report WC/00/19: British Geological Survey and Department of Public Health Engineering

    Google Scholar 

  • BGS & DPHE (2001b) Groundwater studies of arsenic contamination in Bangladesh. British Geological Survey/Government of Bangladesh Department of Public Health Engineering, Dhaka

    Google Scholar 

  • Bhattacharya P, Chatterjee D, Jacks G (1997) Occurrence of arsenic-contaminated groundwater in alluvial aquifers from Delta Plains, Eastern India: options for safe drinking water supply. Int J Water Resour Dev 13:79–92

    Article  Google Scholar 

  • Bhattacharya P, Jacks G, Ahmed K, Routh J, Khan A (2002) Arsenic in groundwater of the Bengal Delta Plain aquifers in Bangladesh. Bull Environ Contam Toxicol 69:538–545

    Article  CAS  Google Scholar 

  • Bhattacharya P, Welch AH, Stollenwerk KG, McLaughlin MJ, Bundschuh J, Panaullah G (2007) Arsenic in the environment: biology and chemistry. Sci Total Environ 379:109–120

    Article  CAS  Google Scholar 

  • Bhuiyan MAH, Dampare SB, Islam M, Suzuki S (2015) Source apportionment and pollution evaluation of heavy metals in water and sediments of Buriganga River, Bangladesh, using multivariate analysis and pollution evaluation indices. Environ Monit Assess 187:4075

    Article  CAS  Google Scholar 

  • Brinkel J, Khan MH, Kraemer A (2009) A systematic review of arsenic exposure and its social and mental health effects with special reference to Bangladesh. Int J Environ Res Public Health 6:1609–1619

    Article  Google Scholar 

  • Bundschuh J, García M, Birkle P, Cumbal L, Bhattacharya P, Matschullat J (2009) Occurrence, health effects and remediation of arsenic in groundwaters of Latin America. In: Bhattacharya J, Matschullat A, Armientan M, Al E (eds) Natural arsenic in groundwaters of Latin America. Taylor & Francis, London

    Google Scholar 

  • Chakraborti D (2013) Arsenic: occurrence in groundwater. In: Encyclopedia of environmental health. Elsevier, Burlington, pp 165–80

    Chapter  Google Scholar 

  • Chakraborti D, Rahman MM, Das B, Murrill M, Dey S, Mukherjee SC, Dhar RK, Biswas BK, Chowdhury UK, Roy S (2010) Status of groundwater arsenic contamination in Bangladesh: a 14-year study report. Water Res 44:5789–5802

    Article  CAS  Google Scholar 

  • Chakraborti S, Dutta AR, Sural S, Gupta D, Sen, S (2013) Ailing bones and failing kidneys: a case of chronic cadmium toxicity. Ann Clin Biochem. 50: 492–495

    Google Scholar 

  • Cheng Z, Van Geen A, Jing C, Meng X, Seddique A, Ahmed KM (2004) Performance of a household-level arsenic removal system during 4-month deployments in Bangladesh. Environ Sci Technol 38:3442–3448

    Article  CAS  Google Scholar 

  • Ciesielski T, Weuve J, Bellinger DC, Schwartz J, Lanphear B, Wright RO (2012) Cadmium exposure and neurodevelopmental outcomes in US children. Environ Health Perspect 120:758

    Article  CAS  Google Scholar 

  • Dhar RK, Biswas BK, Samanta G, Mandal BK, Chakraborti D, Roy S, Jafar A, Islam A, Ara G, Kabir S (1997) Groundwater arsenic calamity in Bangladesh. Curr Sci:48–59

    Google Scholar 

  • DOE (1997) Bangladesh Gazette. Ministry of Environment and Forest, Government of Bangladesh DA-1

    Google Scholar 

  • EPA U (1996) Drinking water regulations and health advisories. US Environmental Protection Agency, Washington, DC

    Google Scholar 

  • EPA U (2001) National primary drinking water regulations; arsenic and clarifications to compliance and new source contaminants monitoring; final rule. Fed Regist 66:6975

    Google Scholar 

  • EPA U (2015) Regulated drinking water contaminants: online database. US Environmental Protection Agency, Washington, DC

    Google Scholar 

  • EPA U (2016) Drinking water action plan. Environmental Protection Agency, Washington, DC

    Google Scholar 

  • Fernandez-Luqueno F, López-Valdez F, Gamero-Melo P, Luna-Suárez S, Aguilera-González E, Martínez A, García-Guillermo M, Hernández-Martínez G, Herrera-Mendoza R, Álvarez-Garza M (2013) Heavy metal pollution in drinking water-a global risk for human health: a review. Afr J Environ Sci Technol 7:567–584

    Google Scholar 

  • Flanagan SV, Johnston RB, Zheng Y (2012) Arsenic in tube well water in Bangladesh: health and economic impacts and implications for arsenic mitigation. Bull World Health Organ 90:839–846

    Article  Google Scholar 

  • Frisbie SH, Ortega R, Maynard DM, Sarkar B (2002) The concentrations of arsenic and other toxic elements in Bangladesh’s drinking water. Environ Health Perspect 110:1147

    Article  CAS  Google Scholar 

  • Frisbie SH, Mitchell EJ, Yusuf AZ, Siddiq MY, Sanchez RE, Ortega R, Maynard DM, Sarkar B (2005) The development and use of an innovative laboratory method for measuring arsenic in drinking water from western Bangladesh. Environ Health Perspect 113:1196

    Article  CAS  Google Scholar 

  • Frisbie SH, Mitchell EJ, Mastera LJ, Maynard DM, Yusuf AZ, Siddiq MY, Ortega R, Dunn RK, Westerman DS, Bacquart T, Sarkar B (2009) Public health strategies for Western Bangladesh that address arsenic, manganese, uranium, and other toxic elements in drinking water. Environ Health Perspect 117:410–416. https://doi.org/10.1289/ehp.11886. Epub 2008 Oct 7

    Article  CAS  Google Scholar 

  • George CM, Zheng Y, Graziano JH, Rasul SB, Hossain Z, Mey JL, Van Geen A (2012) Evaluation of an arsenic test kit for rapid well screening in Bangladesh. Environ Sci Technol 46:11213–11219

    Article  CAS  Google Scholar 

  • Gleason K, Shine JP, Shobnam N, Rokoff LB, Suchanda HS, Hasan I, Sharif MO, Mostofa G, Amarasiriwardena C, Quamruzzaman Q (2014) Contaminated turmeric is a potential source of lead exposure for children in rural Bangladesh. J Environ Public Health 2014:730636

    Article  CAS  Google Scholar 

  • GOB (1998) National water policy. Ministry of Water Resources, Dhaka

    Google Scholar 

  • GOB (2004) The national policy for arsenic mitigation. Department of Public Health Engineering, Dhaka

    Google Scholar 

  • Gobe G, Crane D (2010) Mitochondria, reactive oxygen species and cadmium toxicity in the kidney. Toxicol Lett 198:49–55

    Article  CAS  Google Scholar 

  • Grandjean P, Landrigan PJ (2014) Neurobehavioural effects of developmental toxicity. The Lancet Neurology 13:330–338

    Article  CAS  Google Scholar 

  • Hadi A (2003) Fighting arsenic at the grassroots: experience of BRAC’s community awareness initiative in Bangladesh. Health Policy Plan 18:93–100

    Article  Google Scholar 

  • Hafeman D, Factor-Litvak P, Cheng Z, Van Geen A, Ahsan H (2007) Association between manganese exposure through drinking water and infant mortality in Bangladesh. Environ Health Perspect 115:1107

    Article  CAS  Google Scholar 

  • Hanchett S, Nahar Q, Van Agthoven A, Geers C, Rezvi MFJ (2002) Increasing awareness of arsenic in Bangladesh: lessons from a public education programme. Health Policy Plan 17:393–401

    Article  Google Scholar 

  • Henson MC, Chedrese PJ (2004) Endocrine disruption by cadmium, a common environmental toxicant with paradoxical effects on reproduction. Exp Biol Med 229:383–392

    Article  CAS  Google Scholar 

  • Islam S (2011) Natural sediment may shield groundwater from Arsenic [Online]. Agriculture & Environment: Water News 2011, Science and Development Network. Available: https://www.scidev.net/en/agriculture-and-environment/water/news/natural-sediment-may-shield-groundwater-from-arsenic.html. Accessed 23 September 2018

  • Islam MS, Ahmed MK, Habibullah-Al-Mamun M, Islam KN, Ibrahim M, Masunaga S (2014) Arsenic and lead in foods: a potential threat to human health in Bangladesh. Food Addit Contam A 31:1982–1992

    Article  CAS  Google Scholar 

  • Islam MS, Ahmed MK, Habibullah-Al-Mamun M, Hoque MF (2015a) Preliminary assessment of heavy metal contamination in surface sediments from a river in Bangladesh. Environ Earth Sci 73:1837–1848

    Article  CAS  Google Scholar 

  • Islam MS, Ahmed MK, Raknuzzaman M, Habibullah-Al-Mamun M, Islam MK (2015b) Heavy metal pollution in surface water and sediment: a preliminary assessment of an urban river in a developing country. Ecol Indic 48:282–291

    Article  CAS  Google Scholar 

  • Jain C, Singh R (2012) Technological options for the removal of arsenic with special reference to South East Asia. J Environ Manag 107:1–18

    Article  CAS  Google Scholar 

  • Jeong KS, Park H, Ha E, Hong Y-C, Ha M, Park H, Kim B-N, Lee B-E, LeE S-J, Lee KY (2015) Performance IQ in children is associated with blood cadmium concentration in early pregnancy. J Trace Elem Med Biol 30:107–111

    Article  CAS  Google Scholar 

  • Jiang J-Q, Ashekuzzaman S, Jiang A, Sharifuzzaman S, Chowdhury SR (2012) Arsenic contaminated groundwater and its treatment options in Bangladesh. Int J Environ Res Public Health 10:18–46

    Article  CAS  Google Scholar 

  • Khadse G, Patni P, Kelkar P, Devotta S (2008) Qualitative evaluation of Kanhan river and its tributaries flowing over central Indian plateau. Environ Monit Assess 147:83–92

    Article  CAS  Google Scholar 

  • Khan S, Cao Q, Zheng Y, Huang Y, Zhu Y (2008) Health risks of heavy metals in contaminated soils and food crops irrigated with wastewater in Beijing, China. Environ Pollut 152:686–692

    Article  CAS  Google Scholar 

  • Khan K, Factor-Litvak P, Wasserman GA, Liu X, Ahmed E, Parvez F, Slavkovich V, Levy D, Mey J, Van Geen A (2011) Manganese exposure from drinking water and children’s classroom behavior in Bangladesh. Environ Health Perspect 119:1501

    Article  CAS  Google Scholar 

  • Khan K, Wasserman GA, Liu X, Ahmed E, Parvez F, Slavkovich V, Levy D, Mey J, Van Geen A, Graziano JH (2012) Manganese exposure from drinking water and children’s academic achievement. Neurotoxicology 33:91–97

    Article  CAS  Google Scholar 

  • Kippler M, Bottai M, Georgiou V, Koutra K, Chalkiadaki G, Kampouri M, Kyriklaki A, Vafeiadi M, Fthenou E, Vassilaki M (2016) Impact of prenatal exposure to cadmium on cognitive development at preschool age and the importance of selenium and iodine. Eur J Epidemiol 31:1123–1134

    Article  CAS  Google Scholar 

  • Kurttio P, Auvinen A, Salonen L, Saha H, Pekkanen J, Mäkeläinen I, Väisänen SB, Penttilä IM, Komulainen H (2002) Renal effects of uranium in drinking water. Environ Health Perspect 110:337

    Article  CAS  Google Scholar 

  • Kurwadkar S (2014) Emerging trends in groundwater pollution and quality. Water Environ Res 86:1677–1691

    Article  CAS  Google Scholar 

  • Madajewicz M, Pfaff A, Van Geen A, Graziano J, Hussein I, Momotaj H, Sylvi R, Ahsan H (2007) Can information alone change behavior? Response to arsenic contamination of groundwater in Bangladesh. J Dev Econ 84:731–754

    Article  Google Scholar 

  • Martín JR, De Arana C, Ramos-Miras J, Gil C, Boluda R (2015) Impact of 70 years urban growth associated with heavy metal pollution. Environ Pollut 196:156–163

    Article  CAS  Google Scholar 

  • Maswood M (2018) Rural pregnant women in Bangladesh exposed to lead poisoning. The Newage Bangladesh, June 22, 2018

    Google Scholar 

  • McCarty KM, Hanh HT, Kim K-W (2011) Arsenic geochemistry and human health in South East Asia. Rev Environ Health 26:71–78

    Article  CAS  Google Scholar 

  • Mitra AK, Haque A, Islam M, Bashar S (2009) Lead poisoning: an alarming public health problem in Bangladesh. Int J Environ Res Public Health 6:84–95

    Article  CAS  Google Scholar 

  • Mitra AK, Ahua E, Saha PK (2012) Prevalence of and risk factors for lead poisoning in young children in Bangladesh. J Health Popul Nutr 30:404

    Google Scholar 

  • Mohan D, Pittman CU Jr (2007) Arsenic removal from water/wastewater using adsorbents – a critical review. J Hazard Mater 142:1–53

    Article  CAS  Google Scholar 

  • Mohiuddin K, Ogawa Y, Zakir H, Otomo K, Shikazono N (2011) Heavy metals contamination in water and sediments of an urban river in a developing country. Int J Environ Sci Technol 8:723–736

    Article  CAS  Google Scholar 

  • Morales KH, Ryan L, Kuo T-L, Wu M-M, Chen C-J (2000) Risk of internal cancers from arsenic in drinking water. Environ Health Perspect 108:655

    Article  CAS  Google Scholar 

  • Mosby C, Glanze W, Anderson K (1996) Mosby medical encyclopedia, revised edn. The Signet, St. Louis

    Google Scholar 

  • Nadira SA, Shixiang L (2018) The current situation and sustainable development of water resources in Bangladesh. Am J Water Sci Eng 4:9–15

    Article  Google Scholar 

  • Radloff K, Zheng Y, Michael H, Stute M, Bostick B, Mihajlov I, Bounds M, Huq M, Choudhury I, Rahman M (2011) Arsenic migration to deep groundwater in Bangladesh influenced by adsorption and water demand. Nat Geosci 4:793

    Article  CAS  Google Scholar 

  • Rahman SM, Åkesson A, Kippler M, Grandér M, Hamadani JD, Streatfield PK, Persson L-Å, El Arifeen S, Vahter M (2013) Elevated manganese concentrations in drinking water may be beneficial for fetal survival. PLoS One 8:e74119

    Article  CAS  Google Scholar 

  • Rai A, Tripathi P, Dwivedi S, Dubey S, Shri M, Kumar S, Tripathi PK, Dave R, Kumar A, Singh R (2011) Arsenic tolerances in rice (Oryza sativa) have a predominant role in transcriptional regulation of a set of genes including sulphur assimilation pathway and antioxidant system. Chemosphere 82:986–995

    Article  CAS  Google Scholar 

  • Rodrigues EG, Bellinger DC, Valeri L, Hasan MOSI, Quamruzzaman Q, Golam M, Kile ML, Christiani DC, Wright RO, Mazumdar M (2016) Neurodevelopmental outcomes among 2-to 3-year-old children in Bangladesh with elevated blood lead and exposure to arsenic and manganese in drinking water. Environ Health 15:44

    Article  CAS  Google Scholar 

  • Roels H, Bowler R, Kim Y, Henn BC, Mergler D, Hoet P, Gocheva V, Bellinger DC, Wright R, Harris M (2012) Manganese exposure and cognitive deficits: a growing concern for manganese neurotoxicity. Neurotoxicology 33:872–880

    Article  CAS  Google Scholar 

  • Saha P, Hossain M (2011) Assessment of heavy metal contamination and sediment quality in the Buriganga River, Bangladesh. 2nd international conference on environmental science and technology, IPCBEE, Singapore, pp 26–28

    Google Scholar 

  • Sanders AP, Henn BC, Wright RO (2015) Perinatal and childhood exposure to cadmium, manganese, and metal mixtures and effects on cognition and behavior: a review of recent literature. Curr Environ Health Rep 2:284–294

    Article  CAS  Google Scholar 

  • Santra SC, Samal AC, Bhattacharya P, Banerjee S, Biswas A, Majumdar J (2013) Arsenic in foodchain and community health risk: a study in Gangetic West Bengal. Procedia Environ Sci 18:2–13

    Article  CAS  Google Scholar 

  • Sarkar S, Greenleaf JE, Gupta A, Ghosh D, Blaney LM, Bandyopadhyay P, Biswas R, Dutta AK, Sengupta AK (2010) Evolution of community-based arsenic removal systems in remote villages in West Bengal, India: assessment of decade-long operation. Water Res 44:5813–5822

    Article  CAS  Google Scholar 

  • Sauvé S, Desrosiers M (2014) A review of what is an emerging contaminant. Chem Cent J 8:15

    Article  CAS  Google Scholar 

  • Shankar S, Shanker U (2014) Arsenic contamination of groundwater: a review of sources, prevalence, health risks, and strategies for mitigation. Sci World J 2014

    Google Scholar 

  • Smedley PL, Kinniburgh D (2002) A review of the source, behaviour and distribution of arsenic in natural waters. Appl Geochem 17:517–568

    Article  CAS  Google Scholar 

  • Smith AH, Lingas EO, Rahman M (2000) Contamination of drinking-water by arsenic in Bangladesh: a public health emergency. Bull World Health Organ 78:1093–1103

    CAS  Google Scholar 

  • Stollenwerk KG, Breit GN, Welch AH, Yount JC, Whitney JW, Foster AL, Uddin MN, Majumder RK, Ahmed N (2007) Arsenic attenuation by oxidized aquifer sediments in Bangladesh. Sci Total Environ 379:133–150

    Article  CAS  Google Scholar 

  • Stuart M, Manamsa K, Talbot J, Crane E (2011) Emerging contaminants in groundwater. British geological survey open report, OR/11/013, 123

    Google Scholar 

  • Tchounwou, PB, Yedjou CG, Patlolla AK, Sutton DJ (2012) Heavy metal toxicity and the environment. Molecular, clinical and environmental toxicology. Springer

    Google Scholar 

  • Tong S, Schirnding YEV, Prapamontol T (2000) Environmental lead exposure: a public health problem of global dimensions. Bull World Health Organ 78:1068–1077

    CAS  Google Scholar 

  • Uddin S, Shilpi J, Murshid G, Rahman A, Sarder M, Alam M (2004) Determination of the binding sites of arsenic on bovine serum albumin using warfarin (site-I specific probe) and diazepam (site-II specific probe). J Biol Sci 4:609–612

    Article  Google Scholar 

  • UNICEF (2008) Arsenic mitigation in Bangladesh. UNICEF, New York

    Google Scholar 

  • UNICEF (2009) Bangladesh national drinking water quality survey of 2009. Bangladesh Bureau of Statistics and Unicef, Dhaka

    Google Scholar 

  • UNICEF & BBS (2011) Bangladesh national drinking water quality survey of 2009. UNICEF, Bangladesh

    Google Scholar 

  • USEPA (2008) EPA’s 2008 Report on the Environment. National Center for Environmental Assessment, Washington, DC, EPA/600/R-07/045F. Available from the National Technical Information Service, Springfield, VA, and online at http://www.epa.gov/roe

  • USEPA (2013) Report on the 2013 U.S. Environmental Protection Agency (EPA) International Decontamination Research and Development Conference. Research Traingle Park, NC, November 05–07, 2013. U.S. Environmental Protection Agency, Washington, DC, EPA/600/R-14/210, 2014

    Google Scholar 

  • Van Geen A, Zheng Y, Versteeg R, Stute M, Horneman A, Dhar R, Steckler M, Gelman A, Small C, AhSAN H (2003) Spatial variability of arsenic in 6000 tube wells in a 25 km2 area of Bangladesh. Water Resour Res 39

    Google Scholar 

  • Venugopal T, Giridharan L, Jayaprakash M, Velmurugan P (2009) A comprehensive geochemical evaluation of the water quality of River Adyar, India. Bull Environ Contam Toxicol 82:211–217

    Article  CAS  Google Scholar 

  • Visoottiviseth P, Ahmed F (2009) Technology for remediation and disposal of arsenic. In: Reviews of environmental contamination, vol 197. Springer, Cham

    Google Scholar 

  • Wasserman GA, Liu X, Parvez F, Ahsan H, Levy D, Factor-Litvak P, Kline J, Van Geen A, Slavkovich V, Loiacono NJ, Cheng Z, Zheng Y, Graziano JH (2006) Water manganese exposure and children’s intellectual function in Araihazar, Bangladesh. Environ Health Perspect 114:124–129

    Article  CAS  Google Scholar 

  • WB (2016) The World Bank data. Country and Lending Groups, World Bank, Washington, DC

    Google Scholar 

  • WHO (1996a) Guidelines for drinking-water quality. Vol 1. Recommendations. World Health Organization, 2004, Geneva

    Google Scholar 

  • WHO (1996b) Guidelines for drinking-water quality. Vol. 2, Health criteria and other supporting information: addendum. World Health Organization, Geneva

    Google Scholar 

  • WHO (2004) Guidelines for drinking-water quality: recommendations. World Health Organization, Geneva

    Google Scholar 

  • Wilson B, Pyatt F (2005) Heavy metal dispersion, persistence, and bio-accumulation around an ancient mine situated in Anglesey. UK. Ecol Environ Saf 66:224–231

    Article  CAS  Google Scholar 

  • Xagoraraki I, Kuo D (2008) Water pollution: emerging contaminants associated with drinking water

    Chapter  Google Scholar 

  • Yi Y, Yang Z, Zhang S (2011) Ecological risk assessment of heavy metals in sediment and human health risk assessment of heavy metals in fishes in the middle and lower reaches of the Yangtze River basin. Environ Pollut 159:2575–2585

    Article  CAS  Google Scholar 

  • Zamora ML, Tracy B, Zielinski J, Meyerhof D, Moss M (1998) Chronic ingestion of uranium in drinking water: a study of kidney bioeffects in humans. Toxicol Sci 43:68–77

    Article  CAS  Google Scholar 

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Akter, T., Khan, S., Rahman, M. (2019). Toxic Elements in Bangladesh’s Drinking Water. In: Bharagava, R. (eds) Environmental Contaminants: Ecological Implications and Management . Microorganisms for Sustainability, vol 14. Springer, Singapore. https://doi.org/10.1007/978-981-13-7904-8_12

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