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Published in: Malaria Journal 1/2018

Open Access 01-12-2018 | Research

Environmental health risks and benefits of the use of mosquito coils as malaria prevention and control strategy

Authors: Jonathan N. Hogarh, Thomas P. Agyekum, Crentsil Kofi Bempah, Emmanuel D. J. Owusu-Ansah, Silas W. Avicor, Gordon A. Awandare, Julius N. Fobil, Kwasi Obiri-Danso

Published in: Malaria Journal | Issue 1/2018

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Abstract

Background

Malaria is an infectious disease that causes many deaths in sub-Saharan Africa. In resource-poor malaria endemic communities, mosquito coils are commonly applied in households to repel the vector mosquito that transmits malaria parasites. In applying these coils, users have mainly been interested in the environmental health benefits potentially derived from repelling the mosquito, while oblivious of the environmental health risks that may be associated with exposure to emissions from the use of mosquito coil. This study evaluated the effectiveness of the mosquito coil, ascertained and/or estimated the toxic emissions that may emanate from the coil, and determined its overall appropriateness by conducting a risk–benefit analysis of the use of this strategy in malaria prevention at household levels.

Methods

The repellent ability of mosquito coils was tested by conducting a mosquito knockdown/mortality test in experimental chambers synonymous of local room spaces and conditions. The gaseous and particulate emissions from the mosquito coil were also analysed. Additional scenarios were generated with the Monte Carlo technique and a risk–benefit analysis was conducted applying @Risk software.

Results

Mosquito mortality arising from the application of various mosquito coils averagely ranged between 24 and 64%, which might not provide adequate repellency effect. Emissions from the mosquito coil were also found to contain CO, VOCs, SO2, NO2, PM2.5 and PM10. The Hazard Index of the respective pollutants characterized over a lifetime exposure scenario was low (< 1 for each pollutant), which suggests that the concentrations of the specific chemicals and particulate matter emitted from the mosquito coil may not constitute adverse environmental health risk.

Conclusion

Although the risk of morbidity from the use of the mosquito coil was low, the coil yielded limited protection as a mosquito avoidance method. It may, therefore, have a reduced benefit in controlling malaria and should be applied sparingly in a highly regulated manner only when traditionally proven effective vector control strategies are not available or too expensive for resource-poor malaria endemic regions.
Literature
3.
go back to reference Hogarh JN, Antwi-Agyei P, Obiri-Danso K. Application of mosquito repellent coils and associated self-reported health issues in Ghana. Malar J. 2016;15:61.CrossRefPubMedPubMedCentral Hogarh JN, Antwi-Agyei P, Obiri-Danso K. Application of mosquito repellent coils and associated self-reported health issues in Ghana. Malar J. 2016;15:61.CrossRefPubMedPubMedCentral
4.
go back to reference Lawrance CE, Croft AM. Do mosquito coils prevent malaria? A systematic review of trials. J Travel Med. 2004;11:92–6.CrossRefPubMed Lawrance CE, Croft AM. Do mosquito coils prevent malaria? A systematic review of trials. J Travel Med. 2004;11:92–6.CrossRefPubMed
5.
go back to reference Jetter JJ, Guo Z, McBrian JA, Flynn MR. Characterization of emissions from burning incense. Sci Total Environ. 2002;295:51–67.CrossRefPubMed Jetter JJ, Guo Z, McBrian JA, Flynn MR. Characterization of emissions from burning incense. Sci Total Environ. 2002;295:51–67.CrossRefPubMed
6.
go back to reference Liu W, Zhang J, Hashim JH, Jalaludin J, Hashim Z, Goldstein BD. Mosquito coil emissions and health implications. Environ Health Perspect. 2003;111:1454–60.CrossRefPubMedPubMedCentral Liu W, Zhang J, Hashim JH, Jalaludin J, Hashim Z, Goldstein BD. Mosquito coil emissions and health implications. Environ Health Perspect. 2003;111:1454–60.CrossRefPubMedPubMedCentral
7.
go back to reference Lee S, Wang B. Characteristics of emissions of air pollutants from mosquito coils and candles burning in a large environmental chamber. Atmospheric Environment. 2006;40:2128–38.CrossRef Lee S, Wang B. Characteristics of emissions of air pollutants from mosquito coils and candles burning in a large environmental chamber. Atmospheric Environment. 2006;40:2128–38.CrossRef
8.
go back to reference Wang L, Zheng X, Stevanovic S, Xiang Z, Liu J, Shi H, et al. Characterizing pollutant emissions from mosquito repellents incenses and implications in risk assessment of human health. Chemosphere. 2018;191:962–70.CrossRefPubMed Wang L, Zheng X, Stevanovic S, Xiang Z, Liu J, Shi H, et al. Characterizing pollutant emissions from mosquito repellents incenses and implications in risk assessment of human health. Chemosphere. 2018;191:962–70.CrossRefPubMed
9.
go back to reference Shu-Chen C, Ruey-Hong W, Li-Jie S, Ming-Chih C, Huei L. Exposure to mosquito coil smoke may be a risk factor for lung cancer in Taiwan. J Epidemiol. 2008;18:19–25.CrossRef Shu-Chen C, Ruey-Hong W, Li-Jie S, Ming-Chih C, Huei L. Exposure to mosquito coil smoke may be a risk factor for lung cancer in Taiwan. J Epidemiol. 2008;18:19–25.CrossRef
10.
go back to reference Zhang J, Qi HW, Sun YP, Xie HK, Zhou CC. Mosquito coil exposure associated with small cell lung cancer: a report of three cases. Oncol Lett. 2015;9:1667–71.CrossRefPubMedPubMedCentral Zhang J, Qi HW, Sun YP, Xie HK, Zhou CC. Mosquito coil exposure associated with small cell lung cancer: a report of three cases. Oncol Lett. 2015;9:1667–71.CrossRefPubMedPubMedCentral
11.
go back to reference Salvi D, Limaye S, Muralidharan V, Londhe J, Madas S, Juvekar S, et al. Indoor particulate matter < 2.5 μm in mean aerodynamic diameter and carbon monoxide levels during the burning of mosquito coils and their association with respiratory health. Chest. 2016;149:459–66.CrossRefPubMed Salvi D, Limaye S, Muralidharan V, Londhe J, Madas S, Juvekar S, et al. Indoor particulate matter < 2.5 μm in mean aerodynamic diameter and carbon monoxide levels during the burning of mosquito coils and their association with respiratory health. Chest. 2016;149:459–66.CrossRefPubMed
13.
go back to reference Thompson KM, Graham JD. Going beyond the single number: using probabilistic risk assessment to improve risk management. Human and Ecological Risk Assessment: An International Journal. 1996;2:1008–34.CrossRef Thompson KM, Graham JD. Going beyond the single number: using probabilistic risk assessment to improve risk management. Human and Ecological Risk Assessment: An International Journal. 1996;2:1008–34.CrossRef
14.
go back to reference Liao CM, Chiang KC. Probabilistic risk assessment for personal exposure to carcinogenic polycyclic aromatic hydrocarbons in Taiwanese temples. Chemosphere. 2006;63:1610–9.CrossRefPubMed Liao CM, Chiang KC. Probabilistic risk assessment for personal exposure to carcinogenic polycyclic aromatic hydrocarbons in Taiwanese temples. Chemosphere. 2006;63:1610–9.CrossRefPubMed
15.
go back to reference Tiwari M, Sahu SK, Pandit GG. Inhalation risk assessment of PAH exposure due to combustion aerosols generated from household fuels. Aerosol Air Quality Research. 2015;15:582–90.CrossRef Tiwari M, Sahu SK, Pandit GG. Inhalation risk assessment of PAH exposure due to combustion aerosols generated from household fuels. Aerosol Air Quality Research. 2015;15:582–90.CrossRef
16.
go back to reference Abbott W. A method of computing the effectiveness of an insecticide. J Am Mosq Control Assoc. 1987;3:302–3.PubMed Abbott W. A method of computing the effectiveness of an insecticide. J Am Mosq Control Assoc. 1987;3:302–3.PubMed
17.
go back to reference Ogoma SB, Moore SJ, Maia MF. A systematic review of mosquito coils and passive emanators: defning recommendations for spatial repellency testing methodologies. Parasit Vectors. 2012;5:287.CrossRefPubMedPubMedCentral Ogoma SB, Moore SJ, Maia MF. A systematic review of mosquito coils and passive emanators: defning recommendations for spatial repellency testing methodologies. Parasit Vectors. 2012;5:287.CrossRefPubMedPubMedCentral
18.
go back to reference Avicor SW, Wajidi MF, Jaal Z. Laboratory evaluation of three commercial coil products for protection efficacy against Anopheles gambiae from southern Ghana: a preliminary study. Trop Biomed. 2015;32:386–9.PubMed Avicor SW, Wajidi MF, Jaal Z. Laboratory evaluation of three commercial coil products for protection efficacy against Anopheles gambiae from southern Ghana: a preliminary study. Trop Biomed. 2015;32:386–9.PubMed
19.
go back to reference Avicor SW, Wajidi MF, Owusu EO. To coil or not to coil: application practices, perception and efficacy of mosquito coils in a malaria-endemic community in Ghana. Environ Sci Pollut Res Int. 2017;24:21138–45.CrossRefPubMed Avicor SW, Wajidi MF, Owusu EO. To coil or not to coil: application practices, perception and efficacy of mosquito coils in a malaria-endemic community in Ghana. Environ Sci Pollut Res Int. 2017;24:21138–45.CrossRefPubMed
20.
go back to reference WHO. Air quality guidelines for Europe 2000. 2nd ed, WHO Regional Publications. European Series, N.91, Regional Office for Europe, Copenhagen, Denmark; 2000. WHO. Air quality guidelines for Europe 2000. 2nd ed, WHO Regional Publications. European Series, N.91, Regional Office for Europe, Copenhagen, Denmark; 2000.
21.
go back to reference Memarzadeh F. Effect of reducing ventilation rate on indoor air quality and energy cost in laboratories. Journal of Chemical Health and Safety. 2009;16:20–6.CrossRef Memarzadeh F. Effect of reducing ventilation rate on indoor air quality and energy cost in laboratories. Journal of Chemical Health and Safety. 2009;16:20–6.CrossRef
23.
go back to reference Abdul-Wahab SA, En SCF, Elkamel A, Ahmadi L, Yetilmezsoy K. A review of standards and guidelines set by international bodies for the parameters of indoor air quality. Atmospheric Pollution Research. 2015;6:751–67.CrossRef Abdul-Wahab SA, En SCF, Elkamel A, Ahmadi L, Yetilmezsoy K. A review of standards and guidelines set by international bodies for the parameters of indoor air quality. Atmospheric Pollution Research. 2015;6:751–67.CrossRef
24.
go back to reference Leslie GB, Haraprasad V. Indoor air pollution from combustion sources in developing countries. Indoor and Built Environment. 1993;2:4–13.CrossRef Leslie GB, Haraprasad V. Indoor air pollution from combustion sources in developing countries. Indoor and Built Environment. 1993;2:4–13.CrossRef
25.
go back to reference Ezzati M, Kammen DM. The health impacts of exposure to indoor air pollution from solid fuels in developing countries: knowledge, gaps, and data needs. Environ Health Perspect. 2002;110:1057–68.CrossRefPubMedPubMedCentral Ezzati M, Kammen DM. The health impacts of exposure to indoor air pollution from solid fuels in developing countries: knowledge, gaps, and data needs. Environ Health Perspect. 2002;110:1057–68.CrossRefPubMedPubMedCentral
26.
go back to reference Fullerton DG, Bruce N, Gordon SB. Indoor air pollution from biomass fuel smoke is a major health concern in the developing world. Trans R Soc Trop Med Hyg. 2008;102:843–51.CrossRefPubMedPubMedCentral Fullerton DG, Bruce N, Gordon SB. Indoor air pollution from biomass fuel smoke is a major health concern in the developing world. Trans R Soc Trop Med Hyg. 2008;102:843–51.CrossRefPubMedPubMedCentral
27.
go back to reference Begum BA, Paul SK, Hossain MD, Biswas SK, Hopke PK. Indoor air pollution from particulate matter emissions in different households in rural areas of Bangladesh. Building and Environment. 2009;44:898–903.CrossRef Begum BA, Paul SK, Hossain MD, Biswas SK, Hopke PK. Indoor air pollution from particulate matter emissions in different households in rural areas of Bangladesh. Building and Environment. 2009;44:898–903.CrossRef
28.
go back to reference Health Canada: Exposure guidelines for residential indoor air quality, Canada. A report of the Federal-Provincial Advisory Committee on Environmental and Occupational Health, Ontario, Canada. 1989. Health Canada: Exposure guidelines for residential indoor air quality, Canada. A report of the Federal-Provincial Advisory Committee on Environmental and Occupational Health, Ontario, Canada. 1989.
29.
go back to reference U.S. Environmental Protection Agency (EPA): Exposure Factors Handbook 2011 Edition. National Center for Environmental Assessment, Washington, DC; EPA/600/R- 09/052F. Available from the National Technical Information Service, Springfield, VA, and online at http://www.epa.gov/ncea/efh. Accessed 15 Jan 2018. U.S. Environmental Protection Agency (EPA): Exposure Factors Handbook 2011 Edition. National Center for Environmental Assessment, Washington, DC; EPA/600/R- 09/052F. Available from the National Technical Information Service, Springfield, VA, and online at http://​www.​epa.​gov/​ncea/​efh. Accessed 15 Jan 2018.
Metadata
Title
Environmental health risks and benefits of the use of mosquito coils as malaria prevention and control strategy
Authors
Jonathan N. Hogarh
Thomas P. Agyekum
Crentsil Kofi Bempah
Emmanuel D. J. Owusu-Ansah
Silas W. Avicor
Gordon A. Awandare
Julius N. Fobil
Kwasi Obiri-Danso
Publication date
01-12-2018
Publisher
BioMed Central
Published in
Malaria Journal / Issue 1/2018
Electronic ISSN: 1475-2875
DOI
https://doi.org/10.1186/s12936-018-2412-4

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