Premature deaths due to exposure to PM2.5 in Belgrade before and at the beginning of the COVID-19 pandemic
Keywords:
health impact assessment, attributable cases, premature deaths, air pollution, particulate matter PM2.5, AirQ+, COVID-19Abstract
Prolonged breathing in unhealthy levels of fine particulate matter (PM2.5) often leads to respiratory and cardiovascular diseases and increases mortality. A statistical analysis of PM2.5 concentrations per hour was performed from April 28 to May 28, from 2018 to 2020, before the onset of the COVID-19 pandemic and the first few months after. Quantification of the health effects of exposure to air pollution was done through calculations of attributed deaths in 2018 and 2019 using the AirK + impact assessment for PM2.5 in Old and New Belgrade. It was found that the in 2020 the maximum concentrations of PM2.5 concentrations decreased compared to 2019, most likely as a result of quarantine measures due to the COVID-19 pandemic. Estimated number of attributed cases in 2019, compared to 2018, a larger decrease was recorded in the Old Town than in New Belgrade. The increase in the number of attributed cases is a consequence of the faster development of New Belgrade in relation to Old Belgrade, as well as the increasing intensity of traffic in that part of the city. A progressive reduction in PM2.5 concentrations would bring major health benefits from improved air quality in Belgrade.
Downloads
References
Ahmed, F., Hossain, S., Hossain, S., Fakhruddin, A. N. M., Abdullah, A. T. M., Chowdhury, M. A. Z., & Gan, S. H. (2019). Impact of household air pollution on human health: source identification and systematic management approach. SN Applied Sciences, 1(5), 418. https://doi.org/10.1007/s42452-019-0405-8
Bao, R., & Zhang, A. (2020). Does lockdown reduce air pollution? Evidence from 44 cities in northern China. Science of The Total Environment, 731, 139052. https://doi.org/10.1016/j.scitotenv.2020.139052
Berman, J. D., & Ebisu, K. (2020). Changes in U.S. air pollution
during the COVID-19 pandemic. Science of The Total Environment, 739, 139864. https://doi.org/10.1016/j.scitotenv.2020.139864
Chang, T., Graff Zivin, J., Gross, T., & Neidell, M. (2016). Particulate Pollution and the Productivity of Pear Packers. American Economic Journal: Economic Policy, 8(3), 141– 169. https://doi.org/10.1257/pol.20150085
City of Belgrade. (2021). City of Belgrade - Secretariat for Information. https://www.beograd.rs/lat/upoznajte-beograd
Dantas, G., Siciliano, B., França, B. B., da Silva, C. M., & Arbilla, G. (2020). The impact of COVID-19 partial lockdown on the air quality of the city of Rio de Janeiro, Brazil. Science of The Total Environment, 729, 139085. https://doi.org/10.1016/j.scitotenv.2020.139085
EC. (2016). Urban air pollution – what are the main sources across the world? European Commission, EU Science Hub, The European Commission’s science and knowledge
service. https://ec.europa.eu/jrc/en/news/what-are-main
sources-urban-air-pollution
EEA. (2019). Air quality in Europe — 2019 report; EEA Report
No 10/2019, Copenhagen, Denmark.
https://www.eea.europa.eu//publications/air-quality-ineurope-2019
EEA. (2022). Proposal for a DIRECTIVE OF THE EUROPEAN PARLIAMENT AND OF THE COUNCIL on ambient air quality and cleaner air for Europe (recast) COM/2022/542 . https://eur-lex.europa.eu/legalcontent/EN/ALL/?uri=COM:2022:542:FIN
EU Directive. (2008). Directive 2008/50/EC of the European Parliament and of the Council of 21 May 2008 on ambient air quality and cleaner air for Europe; EU 2008/50/EC OJ L 2152 .
Forouzanfar, M. H., Afshin, A., Alexander, L. T., Anderson, H. R., Bhutta, Z. A., Biryukov, S., Brauer, M., Burnett, R., Cercy, K., Charlson, F. J., Cohen, A. J., Dandona, L., Estep, K., Ferrari, A. J., Frostad, J. J., Fullman, N., Gething, P. W., Godwin, W. W., Griswold, M., … Murray, C. J. L. (2016). Global, regional, and national comparative risk assessment of 79 behavioural, environmental and occupational, and metabolic risks or clusters of risks, 1990–2015: a systematic analysis for the Global Burden of Disease Study 2015. The Lancet, 388(10053), 1659–1724. https://doi.org/10.1016/S0140-6736(16)31679-8
Ganguly, R., Broderick, B. M., & O’Donoghue, R. (2009). Assessment of a General Finite Line Source Model and CALINE4 for Vehicular Pollution Prediction in Ireland. Environmental Modeling & Assessment, 14(1), 113–125. https://doi.org/10.1007/s10666-008-9152-8
Gautam, S. (2020). COVID-19: air pollution remains low as people stay at home. Air Quality, Atmosphere & Health, 13(7), 853–857. https://doi.org/10.1007/s11869-020- 00842-6
Grange, S. K., Salmond, J. A., Trompetter, W. J., Davy, P. K., & Ancelet, T. (2013). Effect of atmospheric stability on the impact of domestic wood combustion to air quality of a small urban township in winter. Atmospheric Environment, 70, 28–38. https://doi.org/10.1016/j.atmosenv.2012.12.047
Han, X., & Naeher, L. P. (2006). A review of traffic-related air pollution exposure assessment studies in the developing world. Environment International, 32(1), 106–120. https://doi.org/10.1016/j.envint.2005.05.020
He, G., Pan, Y., & Tanaka, T. (2020). The short-term impacts of COVID-19 lockdown on urban air pollution in China. Nature Sustainability, 3(12), 1005–1011. https://doi.org/10.1038/s41893-020-0581-y
Karagulian, F., Belis, C. A., Dora, C. F. C., Prüss-Ustün, A. M., Bonjour, S., Adair-Rohani, H., & Amann, M. (2015). Contributions to cities’ ambient particulate matter (PM): A systematic review of local source contributions at global level. Atmospheric Environment, 120, 475–483. https://doi.org/10.1016/j.atmosenv.2015.08.087
Landrigan, P. J., Fuller, R., Acosta, N. J. R., Adeyi, O., Arnold, R., Basu, N. (Nil), Baldé, A. B., Bertollini, R., Bose-O’Reilly, S., Boufford, J. I., Breysse, P. N., Chiles, T., Mahidol, C., Coll-Seck, A. M., Cropper, M. L., Fobil, J., Fuster, V., Greenstone, M., Haines, A., … Zhong, M. (2018). The Lancet Commission on pollution and health. The Lancet, 391(10119), 462–512. https://doi.org/10.1016/S0140- 6736(17)32345-0
Larsson, M., & McNaull, B. (2020). Viet Nam News. How to mitigate the health disaster of air pollution - can the successful Vietnamese Covid response teach us some lessons. https://vietnamnews.vn/life-style/716125/how-tomitigate-the-health-disaster-of-air-pollution-can-thesuccessful-vietnamese-covid-response-teach-us-somelessons.html
Lelieveld, J., Evans, J. S., Fnais, M., Giannadaki, D., & Pozzer, A. (2015). The contribution of outdoor air pollution sources to premature mortality on a global scale. Nature, 525(7569), 367–371. https://doi.org/10.1038/nature15371
Ligus, M. (2018). Measuring the Willingness to Pay for Improved Air Quality: A Contingent Valuation Survey. Polish Journal of Environmental Studies, 27(2), 763–771. https://doi.org/10.15244/pjoes/76406
Lim, S. S., Vos, T., Flaxman, A. D., Danaei, G., Shibuya, K., Adair-Rohani, H., AlMazroa, M. A., Amann, M., Anderson, H. R., Andrews, K. G., Aryee, M., Atkinson, C., Bacchus, L. J., Bahalim, A. N., Balakrishnan, K., Balmes, J., BarkerCollo, S., Baxter, A., Bell, M. L., … Ezzati, M. (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. The Lancet, 380(9859), 2224–2260. https://doi.org/10.1016/S0140- 6736(12)61766-8
Luo, H., Guan, Q., Lin, J., Wang, Q., Yang, L., Tan, Z., & Wang, N. (2020). Air pollution characteristics and human health risks in key cities of northwest China. Journal of Environmental Management, 269, 110791. https://doi.org/10.1016/j.jenvman.2020.110791
Marshall, B. (2020). COVID-19 reduces economic activity, which reduces pollution, which saves lives. http://www.gfeed.com/2020/03/covid-19-reduces-economicactivity.html
Mazzanti, M., & Zoboli, R. (2009). Environmental efficiency and
labour productivity: Trade-off or joint dynamics? A theoretical investigation and empirical evidence from Italy using NAMEA. Ecological Economics, 68(4), 1182–1194. https://doi.org/10.1016/j.ecolecon.2008.08.009
Municipality NB. (2021). https://novibeograd.rs/cinjenice/istorijanovog-beograda/
Municipality SG. (2021). http://www.starigrad.org.rs/o-opstinistari-grad/
Po, J. Y. T., FitzGerald, J. M., & Carlsten, C. (2011). Respiratory disease associated with solid biomass fuel exposure in rural women and children: systematic review and meta-analysis. Thorax, 66(3), 232–239. https://doi.org/10.1136/thx.2010.147884
Rajšić, S. F., Tasić, M. D., Novaković, V. T., & Tomašević, M. N. (2004). First assessment of the PM10 and PM2.5 particulate level in the ambient air of belgrade city. Environmental Science and Pollution Research, 11(3), 158–164. https://doi.org/10.1007/BF02979670
Regulation. (2013). Regulation on monitoring conditions and air quality requirements; (“RS Official Gazette”, No. 11/2010, 75/2010 and 63/2013).
Rodríguez-Urrego, D., & Rodríguez-Urrego, L. (2020). Air quality during the COVID-19: PM2.5 analysis in the 50 most polluted capital cities in the world. Environmental Pollution, 266, 115042. https://doi.org/10.1016/j.envpol.2020.115042
RSO. (2018). Regions in the Republic of Serbia 2017, Republic of Serbia, Republic Statistical Office;
http://publikacije.stat.gov.rs/G2018/Pdf/G201826001.pdf
Sapkota, A., Chelikowsky, A. P., Nachman, K. E., Cohen, A. J., & Ritz, B. (2012). Exposure to particulate matter and adverse birth outcomes: a comprehensive review and meta-analysis. Air Quality, Atmosphere & Health, 5(4), 369–381. https://doi.org/10.1007/s11869-010-0106-3
Satsangi, G., Kulshrestha, A., Taneja, A., & Pasumarti, R. (2011). Measurements of PM10 and PM2.5 aerosols in Agra, a semi-arid region of India. Indian Journal of Radio and Space Physics, 40, 203–210.
SEPA. (2012). Air quality Annual report for 2011. Ministry of Environmental Protection, Serbian Environmental Protection Agency. http://www.sepa.gov.rs/download/VAZDUH2011.pdf
SEPA. (2019). Air quality and allergen pollen in the Republic of Serbia 2018, Serbian Environmental Protection Agency; Ministry of Environment, Belgrade.
SEPA. (2020). Stations / Hourly data. Ministry of Environmental Protection, Serbian Environmental Protection Agency. http://www.amskv.sepa.gov.rs/stanicepodaci.php
Silva da Silva, C., Rossato, J. M., Vaz Rocha, J. A., & Vargas, V. M. F. (2015). Characterization of an area of reference for inhalable particulate matter (PM2.5) associated with genetic biomonitoring in children. Mutation Research/Genetic Toxicology and Environmental Mutagenesis, 778, 44–55. https://doi.org/10.1016/j.mrgentox.2014.11.006
Stanojevic, G., Miljanovic, D., Doljak, D., Curcic, N., Radovanovic, M., Malinovic-Milicevic, S., & Hauriak, O. (2019). Spatio-temporal variability of annual PM2.5 concentrations and population exposure assessment in Serbia for the period 2001-2016. Journal of the Geographical Institute Jovan Cvijic, SASA, 69(3), 197–211. https://doi.org/10.2298/IJGI1903197S
USAID. (2012). Overview of Particle Air Pollution (PM2.5 and PM10). Air Quality Communication Workshop; San Salvador, El Salvador .
WHO. (2013). Review of Evidence on Health Aspects of Air Pollution - REVIHAAP Project Technical Report; World Health Organization.; Regional Office for Europe: Copenhagen, Denmark. http://www.euro.who.int/__data/assets/pdf_file/0004/1931 08/REVIHAAP-Final-technical-report-finalversion.pdf?ua=1
WHO. (2019). Health impact of ambient air pollution in Serbia - A Call to Action 2019, WHO Regional Office for Europe, Copenhagen, Denmark.
https://serbia.un.org/sites/default/files/2019-10/Healthimpact-pollution-Serbia_0.pdf
WHO. (2021). AirQ+: software tool for health risk assessment of air pollution. Regional Office for Europe, European Centre for Environment and Health. Bonn (Germany): WHO Regional Office for Europe.
Yadav, R., Sahu, L. K., Jaaffrey, S. N. A., & Beig, G. (2014). Temporal Variation of Particulate Matter (PM) and Potential Sources at an Urban Site of Udaipur in Western India. Aerosol and Air Quality Research, 14(6), 1613–1629. https://doi.org/10.4209/aaqr.2013.10.0310
Zeng, X., Xu, X., Zheng, X., Reponen, T., Chen, A., & Huo, X. (2016). Heavy metals in PM 2.5 and in blood, and children’s respiratory symptoms and asthma from an e-waste recycling area. Environmental Pollution, 210, 346–353. https://doi.org/10.1016/j.envpol.2016.01.025