Abstract

Vol. 122, No. 1 EditorialOpen AccessAddressing the Burden of Disease Attributable to Air Pollution in India: The Need to Integrate across Household and Ambient Air Pollution Exposures Kalpana Balakrishnan, Aaron Cohen, and Kirk R. Smith Kalpana Balakrishnan Department of Environmental Health Engineering, Sri Ramachandra University, Chennai, India Search for more papers by this author , Aaron Cohen Health Effects Institute, Boston, Massachusetts, USA Search for more papers by this author , and Kirk R. Smith Division of Environmental Health Sciences, School of Public Health, University of California, Berkeley, California, USA Search for more papers by this author Published:1 January 2014https://doi.org/10.1289/ehp.1307822Cited by:31AboutSectionsPDF ToolsDownload CitationsTrack Citations ShareShare onFacebookTwitterLinked InReddit In the comparative risk assessment (Lim et al. 2012), performed as part of the Global Burden of Disease (GBD) 2010 Project, air pollution ranked as a leading contributor to the burden of disease in South Asia. Estimates of the burden in India show approximately 1.04 million premature deaths and 31.4 million disability-adjusted life years (DALYs) to be attributable to household air pollution (HAP) resulting from solid cooking fuels, and 627,000 premature deaths and nearly 17.8 million DALYs to be attributable to ambient air pollution (AAP) in the form of fine particulate matter ≤ 2.5 µm in aerodynamic diameter (PM2.5). HAP and AAP account for 6% and 3%, respectively, of the total national burden of disease, and together they exceed the burden from any other risk factor of the > 60 examined. This burden, borne disproportionately by poor populations who rely on solid fuels for cooking, poses an enormous challenge for air quality management within public health programs in India. There is a need to integrate research and intervention across HAP and AAP exposures in India in order to reduce disease burdens and to efficiently improve health by using intervention efforts.The HAP exposure model used in GBD 2010 (based on measurements and modeling results from India) estimated daily average PM2.5 exposures of 285 µg/m3, 337 µg/m3, and 204 µg/m3 for children, women, and men, respectively (Balakrishnan et al. 2013). The global model used for AAP exposures (which for the first time included ambient air quality of rural areas) estimated a 2010 population-weighted annual mean PM2.5 of 27.2 µg/m3 in India, up 6% from 1990, with a distribution that included much higher levels in urban and some rural areas (Brauer et al. 2012). These estimates, which significantly exceed the World Health Organization (WHO) Air Quality Guideline (AQG) levels (WHO 2006), underscore the interrelated contribution of these HAP and AAP exposures to the burden of disease in India.In GBD 2010, these quantitative exposure estimates were coupled with an integrated exposure–response function to estimate the burden of disease from ischemic heart disease, stroke, acute lower respiratory infection, and lung cancer for both AAP and HAP by contrasting risk under current exposure conditions with the theoretical-minimum-risk exposure distribution that would apply if exposure were reduced to an annual mean PM2.5 of approximately 7 µg/m3 (Lim et al. 2012). The use of the integrated exposure–response function served to fill—by interpolation—the gap in research on HAP and cardiovascular mortality (Pope et al. 2009; Smith and Peel 2010) and allowed more quantitative comparisons between both. As a result, the total attributable disease burden estimates for AAP and HAP in India are considerably higher than previous estimates (WHO 2004). Further, given the high background rates of ischemic heart disease and stroke (Gupta et al. 2008; Murray and Lopez 2013), chronic/noncommunicable diseases are now estimated to account for most of the attributable burden for both HAP and AAP in India, and in the rest of the world (Institute for Health Metrics and Evaluation 2013).Poor air quality in Indian cities continues to present an ominous picture for health burdens attributable to AAP. Analysis of routinely collected ambient air quality data [Central Pollution Control Board (CPCB) 2012] indicates that annual average concentrations of PM10 (≤ 10 µm in aerodynamic diameter) are critically high (defined as > 90 µg/m3 by the CPCB) at more than half of the 503 locations monitored across India. The newly revised Indian national ambient air quality standards (NAAQS) for annual average PM10 and PM2.5 (60 and 40 µg/m3, respectively) (CPCB 2012) are comparable to the WHO interim target-1 guideline values, but much higher than the recommended WHO AQG values themselves of 20 and 10 µg/m3 (WHO 2006) or the U.S. Environmental Protection Agency (EPA) annual PM2.5 standard of 12 µg/m3 (U.S. EPA 2012). Importantly, the NAAQS are above the counterfactual annual mean PM2.5 (7 µg/m3) used in GBD 2010, which means that there would be substantial health burden remaining even if the standards were met. Current projections for transportation (focused on increasing vehicular fleets) and power generation (focused on increasing reliance on coal-based plants) thus need to be examined carefully for their implications for additional insults to air quality (Health Effects Institute 2010; International Council on Clean Transportation 2012; International Energy Agency 2011).At present, the Indian NAAQS remain focused on cities, with extremely limited rural monitoring in place, even though two-thirds of people in India live in rural areas. With about one-fourth of primary outdoor PM2.5 in India attributed to solid household cooking fuels, it will be difficult, and in some areas impossible, to meet current NAAQS without reducing household emissions, in addition to addressing vehicular, industrial, and other emissions from known urban sources (CPCB 2011).Previous efforts to improve conditions for households using solid cooking fuels in India have been mostly directed at developing fuel-efficient biomass cookstoves, but there have been no explicit health- or AQG-driven benchmarks. There is limited evidence of gainful reductions in emissions and exposure from currently available biomass cookstove technologies (Anenberg et al. 2013); thus, HAP interventions need to include innovative ways to increase access to gas and electricity (the only cooking technologies known to currently meet the theoretical-minimum-risk exposure distribution for HAP and AAP), while simultaneously increasing the impetus for research and development to develop truly clean—not just “improved”—biomass stoves. The WHO is currently developing indoor AQGs to provide guidance on indoor emissions rates necessary for cookstoves to satisfy the pollutant-specific WHO AQGs (WHO 2011). Integration of these WHO indoor AQGs within planned programmatic intervention efforts, such as the National Biomass Cookstoves Initiative of the Ministry of New and Renewable Energy, Government of India, would afford an unparalleled opportunity to derive co-benefits for indoor/outdoor air quality and health for a large, highly exposed population.Given the ubiquity of sources, the interrelated nature of ambient and household exposures, and the likely commonality of health effects associated with particulate matter pollution, health effects studies that perform integrated analyses across HAP and AAP exposure settings are needed to inform policy actions in India. Such studies should focus on the major adverse effects that underlie the current burden estimates, most importantly cardiovascular disease. There are currently few epidemiologic studies of AAP risks in India or of HAP risks anywhere in the world that focus on how joint exposure to AAP and HAP may interact to produce long-term adverse health effects. Global research partnerships would provide an opportunity to strengthen the evidence for exposure response for multiple chronic disease end points that are now becoming the focus for global disease burdens. This new evidence would allow the design of strategies that bring HAP and AAP jointly under the domain of air quality regulation and chronic disease management in India and elsewhere in the world where such exposures coexist.The authors declare they have no actual or potential competing financial interests.ReferencesAnenberg SC, Balakrishnan K, Jetter J, Masera O, Mehta S, Moss Jet al.. 2013. Cleaner cooking solutions to achieve health, climate, and economic cobenefits.Environ Sci Technol 47:3944-395223551030. Crossref, Medline, Google ScholarBalakrishnan K, Ghosh S, Ganguli B, Sambandam S, Bruce N, Barnes DFet al.. 2013. State and national household concentrations of PM2.5 from solid cookfuel use: results from measurements and modeling in India for estimation of the global burden of disease.Environ Health 12:77;doi:10.1186/1476-069X-12-7724020494. Crossref, Medline, Google ScholarBrauer M, Amann M, Burnett RT, Cohen A, Dentener F, Ezzati Met al.. 2012. Exposure assessment for estimation of the global burden of disease attributable to outdoor air pollution.Environ Sci Technol 46:652-66022148428. Crossref, Medline, Google ScholarCPCB (Central Pollution Control Board).2011. Air Quality Monitoring, Emission Inventory and Source Apportionment Study for Indian Cities: National Summary Report. New Delhi:CPCB.Available: http://moef.nic.in/downloads/public-information/Rpt-air-monitoring-17-01-2011.pdf [accessed 9 December 2013]. Google ScholarCPCB (Central Pollution Control Board).2012. National Ambient Air Quality Status & Trends in India-2010. New Delhi:CPCB.Available: http://www.cpcb.nic.in/upload/NewItems/NewItem_192_NAAQSTI.pdf [accessed 9 December 2013]. Google ScholarGupta R, Joshi P, Mohan V.. 2008. Epidemiology and causation of coronary heart disease and stroke in India.Heart 94:16-2618083949. Crossref, Medline, Google ScholarHealth Effects Institute.2010. Outdoor Air Pollution and Health in the Developing Countries of Asia: A Comprehensive Review. Special Report 18. Boston:Health Effects Institute.Available: http://pubs.healtheffects.org/getfile.php?u=602 [accessed 9 December 2013]. Google ScholarInstitute for Health Metrics and Evaluation.2013. The Global Burden of Disease: Generating Evidence, Guiding Policy—South Asia Regional Edition.Available: http://www.healthmetricsandevaluation.org/gbd/publications/policy-report/global-burden-disease-south-asia [accessed 15 December 2013]. Google ScholarInternational Council on Clean Transportation.2012. Global Transportation Roadmap: Model Documentation and User Guide; ICCT Roadmap Model Version 1-0.Available: http://www.theicct.org/info/assets/RoadmapV1/ICCT%20Roadmap%20Model%20Version%201-0%20Documentation.pdf [accessed 9 December 2013]. Google ScholarInternational Energy Agency.2011. International Energy Agency Medium-Term Coal Market Report 2012.Available: http://csis.org/event/international-energy-agencys-medium-term-oil-market-report-2012 [accessed 9 December 2013]. Google ScholarLim SS, Vos T, Flaxman AD, Danaei G, Shibuya K, Adair-Rohani Het al.. 2012. A comparative risk assessment of burden of disease and injury attributable to 67 risk factors and risk factor clusters in 21 regions, 1990–2010: a systematic analysis for the Global Burden of Disease study 2010.Lancet 380:2224-226023245609. Crossref, Medline, Google ScholarMurray CJ, Lopez AD. 2013. Measuring the global burden of disease.N Engl J Med 369:448-45723902484. Crossref, Medline, Google ScholarPope CA, Burnett RT, Krewski D, Jerrett M, Shi Y, Calle EEet al.. 2009. Cardiovascular mortality and exposure to airborne fine particulate matter and cigarette smoke: shape of the exposure-response relationship.Circ J 120:941-948. Crossref, Google ScholarSmith KR, Peel JL. 2010. Mind the gap.Environ Health Perspect 118:1643-1645;doi:10.1289/ehp.100251720729177. Link, Google ScholarU.S. EPA (U.S. Environmental Protection Agency).2012. Particulate Matter (PM) Standards.Available: http://www.epa.gov/ttn/naaqs/standards/pm/s_pm_index.html [accessed 15 December 2013]. Google ScholarWHO (World Health Organization).2004. Comparative Quantification of Health Risks: Global and Regional Burden of Disease due to Selected Major Risk Factors. Geneva:WHO.Available: http://www.who.int/healthinfo/global_burden_disease/cra/en/ [accessed 10 December 2013]. Google ScholarWHO (World Health Organization).2006. WHO Air Quality Guidelines for Particulate Matter, Ozone, Nitrogen Dioxide and Sulfur Dioxide: Global Update 2005. Summary of Risk Assessment. Geneva:WHO.Available: http://whqlibdoc.who.int/hq/2006/WHO_SDE_PHE_OEH_06.02_eng.pdf [accessed 10 December 2013]. Google ScholarWHO (World Health Organization).2011. Indoor Air Pollution and Health. Fact Sheet 292. Geneva:WHO.Available: http://www.who.int/mediacentre/factsheets/fs292/en/ [accessed 15 December 2013]. Google ScholarFiguresReferencesRelatedDetailsCited by Kumar M, Sreekanth V, Salmon M, Tonne C and Marshall J (2018) Use of spatiotemporal characteristics of ambient PM 2.5 in rural South India to infer local versus regional contributions, Environmental Pollution, 10.1016/j.envpol.2018.04.057, 239, (803-811), Online publication date: 1-Aug-2018. Balakrishnan K, Ghosh S, Thangavel G, Sambandam S, Mukhopadhyay K, Puttaswamy N, Sadasivam A, Ramaswamy P, Johnson P, Kuppuswamy R, Natesan D, Maheshwari U, Natarajan A, Rajendran G, Ramasami R, Madhav S, Manivannan S, Nargunanadan S, Natarajan S, Saidam S, Chakraborty M, Balakrishnan L and Thanasekaraan V (2018) Exposures to fine particulate matter (PM 2.5 ) and birthweight in a rural-urban, mother-child cohort in Tamil Nadu, India, Environmental Research, 10.1016/j.envres.2017.11.050, 161, (524-531), Online publication date: 1-Feb-2018. Alexander D, Northcross A, Karrison T, Morhasson-Bello O, Wilson N, Atalabi O, Dutta A, Adu D, Ibigbami T, Olamijulo J, Adepoju D, Ojengbede O and Olopade C (2018) Pregnancy outcomes and ethanol cook stove intervention: A randomized-controlled trial in Ibadan, Nigeria, Environment International, 10.1016/j.envint.2017.11.021, 111, (152-163), Online publication date: 1-Feb-2018. Landrigan P, Fuller R, Acosta N, Adeyi O, Arnold R, Basu N, Baldé A, Bertollini R, Bose-O'Reilly S, Boufford J, Breysse P, Chiles T, Mahidol C, Coll-Seck A, Cropper M, Fobil J, Fuster V, Greenstone M, Haines A, Hanrahan D, Hunter D, Khare M, Krupnick A, Lanphear B, Lohani B, Martin K, Mathiasen K, McTeer M, Murray C, Ndahimananjara J, Perera F, Potočnik J, Preker A, Ramesh J, Rockström J, Salinas C, Samson L, Sandilya K, Sly P, Smith K, Steiner A, Stewart R, Suk W, van Schayck O, Yadama G, Yumkella K and Zhong M (2018) The Lancet Commission on pollution and health, The Lancet, 10.1016/S0140-6736(17)32345-0, 391:10119, (462-512), Online publication date: 1-Feb-2018. Gordon T, Balakrishnan K, Dey S, Rajagopalan S, Thornburg J, Thurston G, Agrawal A, Collman G, Guleria R, Limaye S, Salvi S, Kilaru V and Nadadur S (2018) Air pollution health research priorities for India: Perspectives of the Indo-U.S. Communities of Researchers, Environment International, 10.1016/j.envint.2018.06.013, 119, (100-108), Online publication date: 1-Oct-2018. Aunan K, Ma Q, Lund M and Wang S (2018) Population-weighted exposure to PM2.5 pollution in China: An integrated approach, Environment International, 10.1016/j.envint.2018.07.042, 120, (111-120), Online publication date: 1-Nov-2018. Gumede P and Savage M (2017) Respiratory health effects associated with indoor particulate matter (PM2.5) in children residing near a landfill site in Durban, South Africa, Air Quality, Atmosphere & Health, 10.1007/s11869-017-0475-y, 10:7, (853-860), Online publication date: 1-Sep-2017. Qi J, Li Q, Wu J, Jiang J, Miao Z and Li D (2017) Biocoal Briquettes Combusted in a Household Cooking Stove: Improved Thermal Efficiencies and Reduced Pollutant Emissions, Environmental Science & Technology, 10.1021/acs.est.6b03411, 51:3, (1886-1892), Online publication date: 7-Feb-2017. Soneja S, Tielsch J, Khatry S, Zaitchik B, Curriero F and Breysse P (2017) Characterizing Particulate Matter Exfiltration Estimates for Alternative Cookstoves in a Village-Like Household in Rural Nepal, Environmental Management, 10.1007/s00267-017-0915-3, 60:5, (797-808), Online publication date: 1-Nov-2017. Sreekanth V, Mahesh B and Niranjan K (2017) Satellite remote sensing of fine particulate air pollutants over Indian mega cities, Advances in Space Research, 10.1016/j.asr.2017.08.008, 60:10, (2268-2276), Online publication date: 1-Nov-2017. Singh D, Pachauri S and Zerriffi H (2017) Environmental payoffs of LPG cooking in India, Environmental Research Letters, 10.1088/1748-9326/aa909d, 12:11, (115003), Online publication date: 1-Nov-2017. Sidhu M, Ravindra K, Mor S and John S (2017) Household air pollution from various types of rural kitchens and its exposure assessment, Science of The Total Environment, 10.1016/j.scitotenv.2017.01.051, 586, (419-429), Online publication date: 1-May-2017. Singh A, Chakrabarti S, Kumar S and Singh A (2017) Assessment of air quality in Haora River basin using fuzzy multiple-attribute decision making techniques, Environmental Monitoring and Assessment, 10.1007/s10661-017-6075-3, 189:8, Online publication date: 1-Aug-2017. Khandelwal M, Hill M, Greenough P, Anthony J, Quill M, Linderman M and Udaykumar H (2017) Why Have Improved Cook-Stove Initiatives in India Failed?, World Development, 10.1016/j.worlddev.2016.11.006, 92, (13-27), Online publication date: 1-Apr-2017. Tonne C, Salmon M, Sanchez M, Sreekanth V, Bhogadi S, Sambandam S, Balakrishnan K, Kinra S and Marshall J (2017) Integrated assessment of exposure to PM 2.5 in South India and its relation with cardiovascular risk: Design of the CHAI observational cohort study, International Journal of Hygiene and Environmental Health, 10.1016/j.ijheh.2017.05.005, 220:6, (1081-1088), Online publication date: 1-Aug-2017. Mundorf C, Wilson M, Shankar A, Wickliffe J and Lichtveld M (2017) Cultural influences on the management of environmental health risks among low-income pregnant women, Health, Risk & Society, 10.1080/13698575.2017.1398819, 19:7-8, (369-386), Online publication date: 17-Nov-2017. Lichtveld M, Goldstein B, Grattan L and Mundorf C (2016) Then and now: lessons learned from community- academic partnerships in environmental health research, Environmental Health, 10.1186/s12940-016-0201-5, 15:1, Online publication date: 1-Dec-2016. Sagar A, Balakrishnan K, Guttikunda S, Roychowdhury A and Smith K (2016) India Leads the Way: A Health-Centered Strategy for Air Pollution, Environmental Health Perspectives, 124:7, (A116-A117), Online publication date: 1-Jul-2016.Mutlu E, Warren S, Ebersviller S, Kooter I, Schmid J, Dye J, Linak W, Gilmour M, Jetter J, Higuchi M and DeMarini D (2016) Mutagenicity and Pollutant Emission Factors of Solid-Fuel Cookstoves: Comparison with Other Combustion Sources, Environmental Health Perspectives, 124:7, (974-982), Online publication date: 1-Jul-2016. Balakrishnan K, Sambandam S, Ramaswamy P, Ghosh S, Venkatesan V, Thangavel G, Mukhopadhyay K, Johnson P, Paul S, Puttaswamy N, Dhaliwal R and Shukla D (2015) Establishing integrated rural-urban cohorts to assess air pollution-related health effects in pregnant women, children and adults in Southern India: an overview of objectives, design and methods in the Tamil Nadu Air Pollution and Health Effects (TAPHE) study, BMJ Open, 10.1136/bmjopen-2015-008090, 5:6, (e008090-e008090), Online publication date: 10-Jun-2015. Patange O, Ramanathan N, Rehman I, Tripathi S, Misra A, Kar A, Graham E, Singh L, Bahadur R and Ramanathan V (2015) Reductions in Indoor Black Carbon Concentrations from Improved Biomass Stoves in Rural India, Environmental Science & Technology, 10.1021/es506208x, 49:7, (4749-4756), Online publication date: 7-Apr-2015. Schauer J (2015) Design Criteria for Future Fuels and Related Power Systems Addressing the Impacts of Non-CO 2 Pollutants on Human Health and Climate Change , Annual Review of Chemical and Biomolecular Engineering, 10.1146/annurev-chembioeng-061114-123337, 6:1, (101-120), Online publication date: 24-Jul-2015. Nasanen-Gilmore S, Saha S, Rasul I and Rousham E (2015) Household environment and behavioral determinants of respiratory tract infection in infants and young children in northern bangladesh, American Journal of Human Biology, 10.1002/ajhb.22736, 27:6, (851-858), Online publication date: 1-Nov-2015. Sutar K, Kohli S, Ravi M and Ray A (2015) Biomass cookstoves: A review of technical aspects, Renewable and Sustainable Energy Reviews, 10.1016/j.rser.2014.09.003, 41, (1128-1166), Online publication date: 1-Jan-2015. Prasannavenkatesh R, Andimuthu R, Kandasamy P, Rajadurai G, Subash Kumar D, Radhapriya P and Ponnusamy M (2015) Assessment of Population Exposure to Coarse and Fine Particulate Matter in the Urban Areas of Chennai, India, The Scientific World Journal, 10.1155/2015/643714, 2015, (1-11), . Cartier Y, Benmarhnia T and Brousselle A (2015) Tool for assessing health and equity impacts of interventions modifying air quality in urban environments, Evaluation and Program Planning, 10.1016/j.evalprogplan.2015.07.004, 53, (1-9), Online publication date: 1-Dec-2015. Kponee K, Chiger A, Kakulu I, Vorhees D and Heiger-Bernays W (2015) Petroleum contaminated water and health symptoms: a cross-sectional pilot study in a rural Nigerian community, Environmental Health, 10.1186/s12940-015-0073-0, 14:1, Online publication date: 1-Dec-2015. Wilson M, Frickel S, Nguyen D, Bui T, Echsner S, Simon B, Howard J, Miller K and Wickliffe J (2014) A Targeted Health Risk Assessment Following the Deepwater Horizon Oil Spill: Polycyclic Aromatic Hydrocarbon Exposure in Vietnamese-American Shrimp Consumers, Environmental Health Perspectives, 123:2, (152-159), Online publication date: 1-Feb-2015. Baloye. D and Palamuleni L (2015) A Comparative Land Use-Based Analysis of Noise Pollution Levels in Selected Urban Centers of Nigeria, International Journal of Environmental Research and Public Health, 10.3390/ijerph121012225, 12:10, (12225-12246) Limaye V, Knowlton K, Sarkar S, Ganguly P, Pingle S, Dutta P, M. S, Tiwari A, Solanki B, Shah C, Raval G, Kakkad K, Beig G, Parkhi N, Jaiswal A and Mavalankar D (2018) Development of Ahmedabad’s Air Information and Response (AIR) Plan to Protect Public Health, International Journal of Environmental Research and Public Health, 10.3390/ijerph15071460, 15:7, (1460) Tobollik M, Razum O, Wintermeyer D and Plass D (2015) Burden of Outdoor Air Pollution in Kerala, India—A First Health Risk Assessment at State Level, International Journal of Environmental Research and Public Health, 10.3390/ijerph120910602, 12:9, (10602-10619) Vol. 122, No. 1 January 2014Metrics About Article Metrics Publication History Originally published1 January 2014Published in print1 January 2014 Financial disclosuresPDF download License information EHP is an open-access journal published with support from the National Institute of Environmental Health Sciences, National Institutes of Health. All content is public domain unless otherwise noted. 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