3,241
Views
2
CrossRef citations to date
0
Altmetric
Research Article

Assessment of high fluoride in water sources and endemic fluorosis in the North-Eastern communities of Gombe State, Nigeria

, , , , , , , & show all
Pages 31-40 | Received 09 Dec 2020, Accepted 22 Mar 2021, Published online: 13 Apr 2021

References

  • WHO (World Health Organization); UNICEF (United Nations International Children’s Emergency Fund). Update and MDG assessment. World Heal Organ. 2015;2015:90.
  • Asubiojo OI, Nkono NA, Ogunsua AO, et al. Trace elements in drinking and groundwater samples in Southern Nigeria. Sci Total Environ. 1997;208(1–2):1–8.
  • Gleeson T, Befus KM, Jasechko S, et al. The global volume and distribution of modern groundwater. Nat Geosci. 2016;9(2):161–164.
  • Al-Sulaiman SAA-W. Chemical Safety of drinking-water: assessing priorities for risk management. Int J Environ Stud. 2012;69(6):1001.
  • Abbasnia A, Alimohammadi M, Mahvi AH, et al. Assessment of groundwater quality and evaluation of scaling and corrosiveness potential of drinking water samples in villages of Chabahr city, Sistan and Baluchistan province in Iran. Data Br. 2018;16:182–192.
  • Dehghani MH, Zarei A, Yousefi M, et al. Fluoride contamination in groundwater resources in the southern Iran and its related human health risks. Desalin Water Treat. 2019;153:95–104.
  • Li P, He X, Li Y, et al. Health implication of fluoride in groundwater of loess aquifer in the Chinese Loess Plateau: a case study of Tongchuan, Northwest China. Expo Heal. 2019;11(2):95–107. .
  • He X, Li P, Wu J, et al. Poor groundwater quality and high potential health risks in the Datong Basin, northern China: research from published data. Environ Geochem Health 2020;43:791–812. .
  • Adimalla N, Li P. Occurrence, health risks, and geochemical mechanisms of fluoride and nitrate in groundwater of the rock-dominant semi-arid region, Telangana State, India. Hum Ecol Risk Assess. 2019;25(1–2):81–103.
  • Alexander LU, Elements T. Health: an environmental risk in Nigeria. Earth Sci. 2013;2:66.
  • Li YH, Li YH, Wang S, et al. Adsorption of Fluoride from water by amorphous alumina supported on carbon nanotubes. Chem Phys Lett. 2001;350(5–6):412–416. .
  • Ismail ZZ, AbdelKareem HN. Sustainable approach for recycling waste lamb and chicken bones for fluoride removal from water followed by reusing fluoride-bearing waste in concrete. Waste Manag. 2015;45:66–75.
  • Li P, Qian H, Wu J, et al. Occurrence and hydrogeochemistry of fluoride in alluvial aquifer of Weihe River, China. Environ Earth Sci. 2014;71(7):3133–3145.
  • Wu J, Li P, Qian H. Hydrochemical characterization of drinking groundwater with special reference to fluoride in an arid area of China and the control of aquifer leakage on its concentrations. Environ Earth Sci. 2015;73(12):8575–8588.
  • Aranda PR, Llorens I, Perino E, et al. Removal of arsenic(V) ions from aqueous media by adsorption on multiwall carbon nanotubes thin film using XRF technique. Environ Nanotechnology, Monit Manag. 2016;5:21–26.
  • Sachin V, JadhavaEugenioBringasbGanapati D, YadavaVirendra K, et al. Arsenic and fluoride contaminated groundwaters : a review of current technologies for contaminants removal. J Environ Manage. 2015;162:306–325.
  • Mohammadi AA, Yousefi M, Mahvi AH. Fluoride concentration level in rural area in Poldasht city and daily fluoride intake based on drinking water consumption with temperature. Data Br. 2017;13:312–315.
  • Nigerian Standards for Drinking Water Quality. (NSDWQ 554) 2007:ICS 13.060.20.
  • WHO. Guidelines for drinking-water quality, volume 2: health criteria and other supporting information. Sci Total Environ. 2003;61:274.
  • Guissouma W, Hakami O, Al-Rajab AJ, et al. Risk assessment of fluoride exposure in drinking water of Tunisia. Chemosphere. 2017;177:102–108.
  • Vinati A, Mahanty B, Behera SK. Clay and clay minerals for fluoride removal from water: a state-of-the-art review. Appl Clay Sci. 2015;114:340–348.
  • Tomar V, Prasad S, Kumar D. Adsorptive removal of fluoride from aqueous media using citrus limonum (lemon) leaf. Microchem J. 2014;112:97–103.
  • Biswas G, Kumari M, Adhikari K, et al. Review on occurrence of fluoride and its removal through adsorption with an emphasis on natural minerals. Curr Pollut Reports. 2017;3(2):104–119.
  • Akpata ES, Danfillo IS, Otoh EC, et al. Geographical mapping of fluoride levels in drinking water sources in Nigeria. Afr Health Sci. 2009;9(4):227–233.
  • Sabo A, Adamu H, Umar Yuguda A. Assessment of wash-borehole water quality in Gombe metropolis, Gombe State, Nigeria. In: J Environ Earth Sci. 2013. p. 3.
  • Baba S, Okechukwu M, State B. Prevalence of fluoride concentration in ground water sources in Kaltungo, Gombe State, Nigeria. Int J Trend Res Develop (IJTRD). 2019;6:14–20.
  • Lovelyn SK, Hamidu H, Mbiimbe Y, et al. Suitability of ground and surface water resources for different uses in boh community Gombe State Northeastern Nigeria. Nat Sci. 2016;14:22–31.
  • Azhdarpoor A, Radfard M, Rahmatinia M, et al. Data on health risk assessment of fluoride in drinking water in the Khash city of Sistan and Baluchistan province, Iran. Data Br. 2018;21:1508–1513.
  • Moghaddam VK, Yousefi M, Khosravi A, et al. High concentration of fluoride can be increased risk of abortion. Biol Trace Elem Res. 2018;185(2):262–265.
  • UNEP. Analytical methods for environmental water quality 2014:61.
  • Dehbandi R, Moore F, Keshavarzi B. Geochemical sources, hydrogeochemical behavior, and health risk assessment of fluoride in an endemic fluorosis area, central Iran. Chemosphere. 2018;193:763–776.
  • Alaya MB, Saidi S, Zemni T, et al. Suitability assessment of deep groundwater for drinking and irrigation use in the Djeffara aquifers (Northern Gabes, south-eastern Tunisia). Environ Earth Sci. 2014;71(8):3387–3421.
  • Meenakshi MRC. Fluoride in drinking water and its removal. J Hazard Mater. 2006;137(1):456–463.
  • Abouleish MYZ. Evaluation of fluoride levels in bottled water and their contribution to health and teeth problems in the United Arab Emirates. Saudi Dent J. 2016;28(4):194–202.
  • Radfard M, Gholizadeh A, Azhdarpoor A, et al. Health risk assessment to fluoride and nitrate in drinking water of rural residents living in the Bardaskan City, Arid Region, Southeastern Iran. Desalin Water Treat. 2019;145:249–256.
  • Arif M, Husain I, Hussain J, et al. Assessment of fluoride level in groundwater and prevalence of dental fluorosis in Didwana block of Nagaur district, central Rajasthan, India. Int J Occup Environ Med. 2013;4(4):178–184.
  • Yousefi M, Ghoochani M, Hossein Mahvi A. Health risk assessment to fluoride in drinking water of rural residents living in the Poldasht city, Northwest of Iran. Ecotoxicol Environ Saf. 2018;148:426–430.
  • Mandinic Z, Curcic M, Antonijevic B, et al. Fluoride in drinking water and dental fluorosis. Sci Total Environ. 2010;408(17):3507–3512.
  • Yousefi M, Mohammadi AA, Yaseri M, et al. Epidemiology of drinking water fluoride and its contribution to fertility, infertility, and abortion: an ecological study in west azerbaijan province, poldasht county, Iran. Fluoride. 2017;50:343–353.
  • Memon AG, Xing Y, Zhou X, et al. Ultrasensitive colorimetric aptasensor for Hg2+ detection using Exo-III assisted target recycling amplification and unmodified AuNPs as indicators. J Hazard Mater. 2020;384:3–8.
  • Barghouthi Z, Amereih S. Field method for estimation of fluoride in drinking groundwater by photometric measurement of spot on aluminium quinalizarin reagent paper. Arab J Chem. 2017;10:S2919–25.
  • Sunitha V, Reddy BR, Srinivas B. FLuoride in ground water of Anantapur town, Anantapur District, Andhra Pradesh, India. India J Appl Geochem. 2004;6:368–372.
  • Murray JJ. A history of water fluoridation. Br Dent J. n.d.;134:347–350. 250–254, 299–302
  • Chaturvedi AK, Yadava KP, Pathak KC, et al. Defluoridation of water by adsorption on fly ash. water, air, and soil pollution. Water Air Soil Pollut. 1990;49(1–2):51–61.
  • Anses-French Agency for Food, Environmental and Occupational Health & Safety, 2015. (Report No. 2012-SA-0142). Maisons-Alfort n.d.
  • Irigoyen-Camacho ME, García Pérez A, Mejía González A, et al. Nutritional status and dental fluorosis among schoolchildren in communities with different drinking water fluoride concentrations in a central region in Mexico. Sci Total Environ. 2016;541:512–519.
  • Petersen PE, Lennon MA. Effective use of fluorides for the prevention of dental caries in the 21st century: the WHO approach. Community Dent Oral Epidemiol. 2004;32(5):319–321.
  • Prevention and Control of Fluorosis in India, Rajiv gandhi national drink- ing water mission, manual, 1993. n.d.
  • Gowri S, Parappa S, Manjula R, et al. 2013. The association between malnutrition, sorghum (jowar) and dental fluorosis among school children in urban field practice area of S.N. Medical College, Bagalkot, Karnataka. Indian J Contemp Dent. 2013. 14–17.
  • Grimaldo M, Borja-Aburto VH, Ramírez AL, et al. Endemic fluorosis in San Luis Potosi. Mexico. Identification of risk factors associated with human exposure to fluoride. Environ Res. 1995;68(1):25–30.
  • Hernández-Montoya V, Ramírez-Montoya LA, Bonilla-Petriciolet A, et al. Optimizing the removal of fluoride from water using new carbons obtained by modification of nut shell with a calcium solution from egg shell. Biochem Eng J. 2012;62:1–7.
  • Habuda-Stanic´ M, Ravancˇic´ AF ME. A review on adsorption of fluoride from aqueous solution. Materials (Basel). 2014;7(9):6317–6366.
  • Kumar K, Gupta N, Kumar V, et al. Review article A review of emerging adsorbents and current demand for de fl uoridation of water : bright future in water sustainability. Environ Int. 2018;111:80–108.
  • Velazquez-jimenez LH, Vences-alvarez E, Flores-arciniega JL, et al. Water defluoridation with special emphasis on adsorbents-containing metal oxides and/or hydroxides : a review. Sep Purif Technol. 2015;150:292–307.
  • Amuda OS, Giwa AA, Bello IA. Removal of heavy metal from industrial wastewater using modified activated coconut shell carbon. Biochem Eng J. 2007;36(2):174–181.
  • Samadi MT, Zarrabi M, Sepehr MN, et al. Removal of fluoride ions by ion exchange resin: kinetic and equilibrium stu- dies. Environ Eng Manag J. 2014;2014(13):205–214.
  • Potgeiter JH. An experimental assessment of the efficiency of different defluoridation methods.. Chem SA. 1990;317–318.
  • Shen F, Chen X, Gao P. GC. Electrochemical removal of fluoride ions from industrial wastewater. Chem Eng Sci. 2003;58(3–6):987–993.
  • Suneetha M, Sundar BS, Ravindhranath K. Studies on defluoridation techni- ques. Int J Chem Tech Res. 2015;8:295–309.
  • Singh J. Fluoride ions vs removal technologies : a study. Arab J Chem. 2016;9(6):815–824.
  • Bason A, Ben-David Y, Oren VF. Characterization of ion transport in the active layer of RO and NF polyamide membranes Desalination. Arab J Chem. 2006;199:31–33.
  • Singh J, Singh P, Singh A. Fluoride ions vs removal technologies: a study. Arab J Chem. 2016;9(6):815–824.
  • Ayoob S, Gupta AK. VTB. A conceptual overview on sustainable tech- nologies for defluoridation of drinking water and removal mechanisms. Crit Rev Environ Sci Technol. 2008;38(6):401–470.
  • Majewska-Nowak K, Grzegorzek M, Kabsch-Korbutowicz M. Removal of fluoride ions by batch electrodialysis. Environ Prot Eng. 2015;41:67–81.
  • Gmar S, Sayadi IBS, Helali N, et al. Desalination and de- fluoridation of tap water by electrodialysis. Environ Process. 2015;2(S1):209–222. .