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Human Health Risk Assessment Through Consumption of Organophosphate Pesticide-Contaminated Water of Peshawar Basin, Pakistan

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Abstract

In this study, the concentrations of organophosphate pesticides (OPPs) were determined in drinking water samples collected from Peshawar Basin (Charsadda, Nowshera, Peshawar, Mardan, and Swabi districts), Khyber Pakhtunkhwa, Pakistan. The selected OPPs such as methamidophos, dichlorvos, and chlorpyrifos were extracted through liquid–liquid extraction procedure and quantified using gas chromatography–mass spectrometry. The results revealed that among OPPs, the highest contamination was observed for methamidophos, while the lowest for dichlorvos. The OPP concentrations were compared with their respective permissible limits set by European Union (EU in Council Directive 98/83/EC on the quality of water intended for human consumption. European Union, 1998), Australia (NHMRC in Australian drinking water guidelines. Agricultural and Resource Management Council of Australia and New Zealand Commonwealth of Australia, Canberra, 1996), and World Health Organization (WHO in Guidelines for drinking water quality, 2nd edn, WHO, Geneva 1998). In majority samples (94.4%), methamidophos concentrations exceeded its respective permissible limit set by EU. The concentrations of dichlorvos exceeded the limit set by Australia and EU in 17.2 and 69% samples, respectively. However, the concentrations of chlorpyrifos exceeded the EU limit in only 2.3% samples, while found within the safe limits set by WHO. The concentrations of studied OPPs were also used to assess the health risk including chronic risk such as average daily dose (ADD), hazard quotient (HQ), and carcinogenic risk or cancer risk (CR). The ADD values for OPPs showed a great variation in the study area. The values of HQ were > 1 for methamidophos in drinking water samples of Peshawar Basin. Moreover, the CR values through consumption of dichlorvos in drinking water exceeded US-EPA safe limit. Among all drinking water sources, the shallow water sources along agriculture productive zones revealed higher contamination and serious health risk. Therefore, this study recommends to stop the use of shallow drinking water and use the deep groundwater at depths > 98 m that showed comparatively less contamination.

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References

  • Agarwal A, Prajapati R, Singh OP, Raza SK, Thakur LK (2015) Pesticide residue in water-a challenging task in India. Environ Monit Assess 187:54. doi:10.1007/s10661-015-4287-y

    Article  CAS  Google Scholar 

  • Ahad K, Anwar T, Ahmad I, Mohammad A, Tahir S, Aziz S, Baloch U (2000) Determination of insecticide residues in groundwater of Mardan Division. NWFP, Pakistan: a case study. Water SA 26:409–412

    CAS  Google Scholar 

  • Ahad K, Hayat Y, Ahmad I, Soomro MH (2001) Capillary chromatographic determination of pesticides residues in groundwater of Multan Division. Nucleus 38:145–149

    Google Scholar 

  • Akhtar MW, Sengupta D, Chowdhury A (2009) Impact of pesticides use in agriculture: their benefits and hazards. Interdiscip Toxicol 2:1–12

    Article  Google Scholar 

  • Anwar T (2006) Pesticide residues in water, soil, fruits and vegetables in cotton growing areas of Sindh and lower Punjab. PhD thesis, Department of Zoology, University of Karachi, Pakistan

  • AOAC (2000) Association of Analytical Communities. Official method of analysis of AOAC international. AOAC International, Gaithburg, MD, Official method 990.06, p 14

  • Babina K, Dollard M, Pilotto L, Edwards JW (2012) Environmental exposure to organophosphorus and pyrethroid pesticides in South Australian preschool children: across sectional study. Environ Int 48:109–120

    Article  CAS  Google Scholar 

  • Barakat AO, Kim M, Qian Y, Wade TL (2002) Organochlorine pesticides and PCB residues in sediments of Alexandria Harbour, Egypt. Mar Pollut Bull 44:1421–1434

    Article  Google Scholar 

  • Boada LD, Sangil M, Álvarez-León EE, Hernández-Rodríguez G, Henríquez-Hernández LA, Camacho M, Luzardo OP (2014) Consumption of foods of animal origin as determinant of contamination by organochlorine pesticides and polychlorobiphenyls: results from a population-based study in Spain. Chemosphere 114:121–128

    Article  CAS  Google Scholar 

  • Bouvier G, Seta N, Vigouroux-Villard A, Blanchard O, Momas I (2005) Insecticide urinary metabolites in non-occupationally exposed populations. J Toxicol Environ Health B 8:485–512

    Article  CAS  Google Scholar 

  • Eqani SAMAS, Malik RN, Alamdar A, Faheem H (2012) Status of organochlorine contaminants in the different environmental compartments of Pakistan: a review on occurrence and levels. Bull Environ Contam Toxicol 88:303–310

    Article  Google Scholar 

  • EU (1998) Council Directive 98/83/EC on the quality of water intended for human consumption. European Union, Off J EC L330/32

  • Fenoll J, Vela N, Navarro G, Pérez-Lucas G, Navarro S (2014) Assessment of agro-industrial and composted organic wastes for reducing the potential leaching of triazine herbicide residues through the soil. Sci Total Environ 493:124–132

    Article  CAS  Google Scholar 

  • Fenske RA (2000) Strategies for assessing children’s organophosphorus pesticide exposures in agricultural communities. J Expo Anal Environ Epidemiol 10:662–671

    Article  CAS  Google Scholar 

  • Flores-García M, Molina-Morales Y, Balza-Quintero A, Benítez-Díaz P, Miranda-Contreras L (2011) Pesticide residues in drinking water of an agricultural community in the state of Merida. Venez Invest Clin 52:295–311

    Google Scholar 

  • GOP (1998) District census report of Peshawar. Population Census Organization, Federal Bureau of Statistics, Statistics Division, Islamabad, Government of Pakistan, Islamabad

    Google Scholar 

  • Hanke W, Jurewicz J (2004) The risk of adverse reproductive and developmental disorders due to occupational pesticide exposure: an overview of current epidemiological evidence. Int J Occup Med Environ Health 17(2):223–243

    Google Scholar 

  • Igbedioh SO (1991) Effects of agricultural pesticides on humans, animals and higher plants in developing countries. Arch Environ Health 12:218

    Article  Google Scholar 

  • Iram S, Ahmad I, Ahad K, Muhammad A, Anjum S (2009) Analysis of pesticides residues of Rawal and Simly Lakes. Pak J Bot 41(4):1981–1987

    CAS  Google Scholar 

  • IRIS (1994) (Integrated Risk Information System) Oral chronic reference dose integrate risk information system database; toxicity and chemical specific factor database. http://risk.lsd.ornl.gov/cig

  • Ismail M, Sayed M, Khan HM, Cooper WJ (2014) Analysis of pesticides in water samples and removal of monocrotophos by γ-irradiation. J Anal Bioanal Tech 5:181. doi:10.4172/2155-9872.1000181

    Article  CAS  Google Scholar 

  • Jacobsen H, Ostergaard G, Lam HR, Poulsen ME, Frandsen H (2004) Repeated dose 28-d oral toxicity study in Wistar rats with a mixture of five pesticides often found as residues in food: alphacypermethrin, bromopropylate, carbendazim, monocrotophos and mancozeb. Food Chem Toxicol 42:1269–1277

    Article  CAS  Google Scholar 

  • Jaipieam S, Visuthismajarn P, Sutheravut P, Siriwong W, Thoumsang S, Borjan M, Robson M (2009) Organophosphate pesticide residues in drinking water from artesian wells and health risk assessment of Agricultural Communities, Thailand. Hum Ecol Risk Assess 15:1304–1316

    Article  CAS  Google Scholar 

  • Khan DA, Bhatti MM, Khan FA, Naqvi TA, Karam A (2008) Adverse effects of pesticide residues on biochemical markers in Pakistani tobacco farmers. Int J Clin Exp Med 1:274–282

    CAS  Google Scholar 

  • Khan S, Shah IA, Muhammad S, Malik RN, Shah MT (2015) Arsenic and heavy metal concentrations in drinking water in Pakistan and risk assessment: a case study. Hum Ecol Risk Assess 21:1020–1031

    Article  CAS  Google Scholar 

  • Kitamura S, Suzuki T, Ohta S, Fujimoto N (2003) Antiandrogenic activity and metabolism of the organophosphorus pesticide fenthion and related compounds. Environ Health Perspect 111:503–508

    Article  CAS  Google Scholar 

  • Köck-Schulmeyer M, Ginebreda A, Postigo C, Garrido T, Fraile J, de Alda ML, Barceló D (2014) Four-year advanced monitoring program of polar pesticides in groundwater of Catalonia (NE-Spain). Sci Total Environ 470:1087–1098

    Article  Google Scholar 

  • Koureas M, Tsakalof A, Tsatsakis A, Hadjichristodoulou C (2012) Systematic review of biomonitoring studies to determine the association between exposure to organophosphorus and pyrethroid insecticides and human health outcomes. Toxicol Lett 210(2):155–168

    Article  CAS  Google Scholar 

  • Kustera M, Alda ML, Barcelo D (2009) Liquid chromatography-tandem mass spectrometric analysis and regulatory issues of polar pesticides in natural and treated waters. J Chromatogr A 1216:520–529

    Article  Google Scholar 

  • Lari SZ, Khan NA, Gandhi KN, Meshram TS, Thacker NP (2014) Comparison of pesticide residues in surface water and ground water of agriculture intensive areas. J Environ Health Sci Eng 12:11. doi:10.1186/2052-336X-12-11

    Article  CAS  Google Scholar 

  • Li P, Qian H (2011) Human health risk assessment for chemical pollutants in drinking water source in Shizuishan City, Northwest China. Iran J Environ Health Sci Eng 8(1):41–48

    CAS  Google Scholar 

  • Li P, Wu J, Qian H (2014) Origin and assessment of groundwater pollution and associated health risk: a case study in an industrial park, northwest China. Environ Geochem Health 36(4):693–712. doi:10.1007/s10653-013-9590-3

    Article  CAS  Google Scholar 

  • Li P, Wu J, Qian H (2016) Preliminary assessment of hydraulic connectivity between river water and shallow groundwater and estimation of their transfer rate during dry season in the Shidi River, China. Environ Earth Sci 75(2):99. doi:10.1007/s12665-015-4949-7

    Article  Google Scholar 

  • Malik RN, Rauf S, Mohammad A, Eqani SAMAS, Ahad K (2011) Organochlorine residual concentrations in cattle egret from the Punjab Province, Pakistan. Environ Monit Assess 173:325–341

    Article  CAS  Google Scholar 

  • Mansour SA (2004) Pesticide exposure—Egypt scene. Toxicology 198(1–3):91–115

    Article  CAS  Google Scholar 

  • Marasinghe JP, Magamage C, Shiromi MGD, Aravinna AGP (2011) Organophosphate pesticide residues in food commodities in Sri Lanka: a review. Ann Sri Lanka Dep Agric 13:81–93

    Google Scholar 

  • Masih A, Lal J, Patel DK (2014) Contamination and exposure profiles of persistent organic pollutants (PAHs and OCPs) in groundwater at a Terai Belt of North India Water Quality. Expo Health 6:187–198

    Article  CAS  Google Scholar 

  • Muhammad S, Shah MT, Khan S (2011) Health risk assessment of heavy metals and their source apportionment in drinking water of Kohistan region, northern Pakistan. Microchem J 98:334–343

    Article  CAS  Google Scholar 

  • Mutiyar PK, Mittall AK, Pekdeger A (2011) Status of organochlorine pesticides in the drinking water well-field located in the Delhi region of the flood plains of river Yamuna. Drink Water Eng Sci 4:51–60

    Article  CAS  Google Scholar 

  • National Pesticide Telecommunication Network (2008) Pesticides in drinking water. http://npic.orst.edu/factsheet/drinkingwater.pdf

  • Neishabouri EZ, Hassan ZM, Azizi E, Ostad SN (2004) Evaluation of immunotoxicity induced by diazinon in C57bl/6 mice. Toxicology 196:173–179

    Article  CAS  Google Scholar 

  • NHMRC National Health and Medical Research Council (1996) Australian drinking water guidelines. Agricultural and Resource Management Council of Australia and New Zealand Commonwealth of Australia, Canberra

    Google Scholar 

  • Okamura A, Kamijima M, Shibata E, Ohtani K, Takagi K (2005) A comprehensive evaluation of the testicular toxicity of dichlorvos in Wistar rats. Toxicology 213:129–137

    Article  CAS  Google Scholar 

  • Pimental D (1995) Amounts of pesticides reaching target pests: environmental impacts and ethics. J Agric Environ Ethics 8:17–29

    Article  Google Scholar 

  • PPSGDP (2002) Punjab Private Sector Groundwater Development Project (PPSGDP), Environmental assessment and water quality monitoring program. Irrigation and Power Department, Government of the Punjab, Pakistan technical report 54

  • Qureshi MN, Rahman IU (2015) Evaluation of pesticide residues in drinking water in different areas of Khyber Pakhtunkhwa, Pakistan. Pak J Sci Ind Res Ser A 58:111

    CAS  Google Scholar 

  • Ross SM (2013) Neuro behavioral problems following low-level exposure to organophosphate pesticides: a systematic and meta-analytic review. Crit Rev Toxicol 43:21–44

    Article  CAS  Google Scholar 

  • Sanches SM, Silva CHTP, Campos SX, Vieira EM (2003) Pesticides and respective risks associated to water contamination. Pesticidas 13:53–58

    CAS  Google Scholar 

  • Strong LL, Thompson B, Coronado GD, Griffith WC, Vigoren EM, Islas I (2004) Health symptoms and exposure to organophosphate pesticides in farmworkers. Am J Ind Med 46(6):599–606

    Article  CAS  Google Scholar 

  • Syed JH, Malik RN (2011) Occurrence and source identification of organochlorine pesticides in the surrounding surface soils of the Ittehad Chemical Industries Kalashah Kaku Pakistan. Environ Earth Sci 62:1311–1321

    Article  CAS  Google Scholar 

  • Tahir S, Anwar T, Aziz S, Werrer RA, Ahad K (1999) Analysis of pesticide residues in fortified water, soil and vegetables samples. J Biol Sci 2(1):233–235

    Google Scholar 

  • Tariq MI, Afzal S, Hussain I, Sultana N (2007) Pesticides exposure in Pakistan: a review. Environ Int 33:1107–1122

    Article  CAS  Google Scholar 

  • USEPA (1997) The health effects assessment summary tables—annual update (HEAST) USEPA, Washington, DC, EPA/540-R-97-036, PB97-921199

  • USEPA (1999) Definitions and general principles for exposure assessment: guidelines for exposure assessment. Office of Pesticide Programs, Washington, DC, p 3

    Google Scholar 

  • Wee SY, Omar TFT, Aris AZ, Lee Y (2016) Surface water organophosphorus pesticides concentration and distribution in the Langat River, Selangor, Malaysia. Expo Health 8:497–511

    Article  CAS  Google Scholar 

  • WHO (1998) Guidelines for drinking water quality, 2nd edn. World Health Organization, Geneva

    Google Scholar 

  • Wu J, Sun Z (2016) Evaluation of shallow groundwater contamination and associated human health risk in an alluvial plain impacted by agricultural and industrial activities, mid-west China. Expo Health 8(3):311–329. doi:10.1007/s12403-015-0170-x

    Article  CAS  Google Scholar 

  • Wu C, Luo Y, Gui T, Huang Y (2014) Concentrations and potential health hazards of organochlorine pesticides in shallow groundwater of Taihu Lake region, China. Sci Total Environ 470–471:1047–1055

    Article  Google Scholar 

  • Wu J, Xue C, Tian R, Wang S (2017) Lake water quality assessment: a case study of Shahu Lake in the semi-arid loess area of northwest China. Environ Earth Sci 76:232. doi:10.1007/s12665-015-4208-y

    Article  Google Scholar 

  • WWF (2007) Water and health related issues in Pakistan and key recommendations, Pakistan’s waters at risk. A special report, WWF-Pakistan, Ferozepur Road, Lahore, pp 1–33

  • Yousafzai A, Eckstein Y, Dahl P (2008) Numerical simulation of groundwater flow in the Peshawar intermontane basin, northwest Himalayas. Hydrogeol J 16:1395–1409. doi:10.1007/s10040-008-0355-5

    Article  CAS  Google Scholar 

Download references

Acknowledgements

The financial support to this study was provided by Higher Education Commission, Islamabad, Pakistan.

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Correspondence to Sardar Khan.

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Ali, N., Kalsoom, Khan, S. et al. Human Health Risk Assessment Through Consumption of Organophosphate Pesticide-Contaminated Water of Peshawar Basin, Pakistan. Expo Health 10, 259–272 (2018). https://doi.org/10.1007/s12403-017-0259-5

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