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Editorial

Air Pollution and Health: The Need for a Medical Reading of Environmental Monitoring Data

by
Marcello Iriti
1,2,
Prisco Piscitelli
1,3,*,
Eduardo Missoni
4,5 and
Alessandro Miani
1,6
1
Italian Society of Environmental Medicine (SIMA), 20133 Milan, Italy
2
Department of Agricultural and Environmental Sciences, University of Milan, 20133 Milan, Italy
3
Euro Mediterranean Scientific Biomedical Institute (ISBEM), Rue de Bellard 20, 1040 Bruxelles, Belgium
4
Department of Sociology and Social Research, Bicocca University, 20133 Milan, Italy
5
Centre for Research on Health and Social Care Management (CERGAS), SDA Bocconi School of Management, 20133 Milan, Italy
6
Department of Environmental Science and Policy, University of Milan, 20133 Milan, Italy
*
Author to whom correspondence should be addressed.
Int. J. Environ. Res. Public Health 2020, 17(7), 2174; https://0-doi-org.brum.beds.ac.uk/10.3390/ijerph17072174
Submission received: 12 March 2020 / Accepted: 16 March 2020 / Published: 25 March 2020

Abstract

:
Air pollution is a recent public health issue. In 2006, the World Health Organization (WHO) published updated air quality guidelines for a number of air pollutants (including PM10 and PM2.5), which recommended for particulate matter annual average concentration levels at half or less the limit values set by European legislation. In the European Union, around 80% of the European urban population is exposed to air pollution above the levels recommended by the WHO guidelines. Only in 2015 the WHO addressed for the first time the topic of the health impacts of air pollution in its general assembly, which adopted a resolution clearly defining air pollution as the world’s largest single environmental health risk factor. Nowadays, the WHO considers air pollution as a major public health threat, causing a 7% increase in overall mortality for each increase of 10 μg/m3 in annual average of PM2.5. This result has been achieved thanks to the outstanding efforts of the director of the WHO’s Environment and Public Health Department, Dr. Maria Neira, who has devoted her full commitment to highlighting the consequences that air pollution has on people’s health. More recently, at European level, the Air Quality Directive has been subject to a fitness check, published in 2019; the European Green Deal has since announced its aim to align EU air quality standards more closely with the WHO recommendations. Every year, the European Environment Agency (EEA) publishes its “Air Quality in Europe” Report to assess the figures on air pollution across Europe and related health impacts. However, environmental data provided by official regional or national agencies—used by decision makers to adopt preventive measures such as limitations on urban traffic or domestic heating—refer to legal thresholds established by the law (usually on the basis of values set at European level, at least for the EU). These legal thresholds, however, are not adequate to fully protect population against all impacts from air pollution as recommended by WHO and scientific evidence. Therefore, we point out the need for a medical reading of environmental monitoring data that should be performed both at national and regional or local level by health authorities, to foster population health protection against air pollution and guarantee the application of the precautionary principle. A stronger cooperation between environmental agencies and health authorities is needed to address the new challenges to human and planetary health arising from air pollution and climate change. Health authorities should integrate their medical staff with new professionals and researchers with adequate training in environmental sciences to foster population health protection against air pollution. For this purposes, multi-disciplinary research units or teams should be established by local health authorities on environmental health topics, working together with medical staff and environmental agencies for a mutual integration of competencies.

1. Air Pollution and Health: ARecent Issue

In 2006, the World Health Organization (WHO) published updated Air Quality Guidelines for a number of air pollutants, which recommend for particulate matter annual average concentration levels at half or less the limit values set by European legislation [1]. According to these air quality guidelines, annual average concentrations of PM10 should not exceed 20 μg/m3 (compared to the current limit value set by the EU of 40 μg/m3) and PM2.5 should not exceed 10μg/m3 (compared to the current EU limit value, set by EU legislation at 25 μg/m3) [1]. A number of countries have already adopted air quality standards for annual averages of PM10 and PM2.5 that are closer to the 2005 WHO guidelines (including Switzerland, Canada, Norway, Japan, and the United States of America). In the European Union, around 80% of the European urban population is exposed to air pollution above the levels recommended by the WHO guidelines [2].The World Health Organization has furthermore noted that the adverse effects on health of particulate matter are well documented, and that there is no evidence of a safe level of exposure or a threshold below which no adverse health effects occur, including exacerbations of respiratory diseases (e.g., asthma, especially in children).
In 2013, the International Agency for Research on Cancer (IARC) had already classified outdoor air pollution in general, and particulate matter in particular, as carcinogenic to humans (IARC Class 1), pointing out that fine dusts are known to produce severe health impacts even at very low concentrations [3]. Surprisingly, only on 26 May 2015 the World Health Organization addressed for the first time the topic of the health impacts of air pollution, and its general assembly adopted a resolution clearly defining air pollution as the world’s largest single environmental health risk factor. Nowadays, WHO considers air pollution a major public health threat, causing a 7% increase in overall mortality for each increase of 10 μg/m3 in annual average of PM2.5 [4]. This result has been achieved thanks to the outstanding efforts of the director of the WHO’s Environment & Public Health Department, Dr. Maria Neira, who has devoted her full commitment to highlighting the consequences that air pollution has on people’s health. More recently, at European level, the Air Quality Directive has been subject to a fitness check, published in 2019; the European Green Deal has since announced its aim to align EU air quality standards more closely with WHO recommendations, but the cut to the limits on PM10 and PM 2.5 has not yet been accomplished.

2. Air Pollution: An under-Perceived Threat For public Health and Society

The European Environment Agency (EEA) publishes, every year, a specific Air Quality Report concerning 41 European countries (including the EU Member States). The most recent report was issued in autumn 2019, and again recognizes air pollution as a significant threat to human health in European cities, resulting in considerable impacts in terms of premature mortality, medical costs, and loss of productivity [2]. According to the EEA’s “Air Quality in Europe—2019 Report”, the most harmful pollutants for human health are particulate matter (PM), nitrogen dioxide (NO2) and ground-level ozone (O3), resulting in about 538,000 estimated premature deaths across Europe and almost 506,000 in the 28 countries belonging to the European Union, including the UK (Table 1). As a proxy for the economic impact of air pollution, we can refer to the indicator “years of life lost” (YLL) attributable to air pollution via PM2.5 and NO2 and O3 exposure, which has been estimated by the EEA at about 4,150,000 for Europe as whole and 4,466,000 for the 28 EU member States (Table 1). If we consider that, as Chiabai, Spadaro and Neuman have recently assessed [5], each year of life lost for European people corresponds to an annual value of 100,000 euros, it comes up more clearly how huge is the impact of air pollution both in terms of population health and economic consequences: more than four billion euros per year only for this indicator. A recent fitness check of the EU’s air quality legislation also confirmed the substantial economic impact of air pollution.
This evidence demonstrates that individual health risks deriving from the inhalation of air pollutants are likely under-perceived, as well as the related societal and economic burden due to premature deaths and years of life lost. It took decades to define the risks related to cigarette smoking, based on scientific evidence, but the perception of individual risk arising from smoking is still not clear to smokers. One might argue that the same is happening with the issue of health consequences of air pollution. The fact that risk perception in the public opinion concerning this dramatic topic is largely inadequate is confirmed by figures provided by the EEA, which show that WHO guideline values for fine particulate matter (PM2.5) are exceeded at 69% of all reporting monitoring stations; as a result, 77% of the urban population across the EU was exposed to air pollution atlevels indicated as harmful by the World Health Organization [1,2]. Indeed, the recent fitness check of the air quality legislation of the EU highlights that current EU air quality standards are not as ambitious as established scientific advice suggests for several air pollutants, especially fine particulate matter (PM2.5). The European Green Deal has announced that the Commission will strive to steer Europe towards a zero-pollution ambition and, in that context, draw on the lessons learnt from the evaluation of the current air quality legislation, with a view to revise EU air quality standards and align them more closely with the WHO recommendations.

3. The Need for a Medical Reading of Environmental Monitoring Data

A huge number of reliable epidemiological studies have associated air pollution with increased mortality due to all causes in the general population, especially cardio-cerebral-vascular accidents and respiratory diseases or lung cancers [6,7,8,9,10,11,12,13,14,15,16,17,18,19,20,21]. Moreover, an increase in the number of hospitalizations has been proved within 48–72 hours from peak concentrations of fine particulate matter [22,23,24,25,26,27,28,29]. Long term negative effects of air pollution have also been documented for neurodegenerative diseases as well as in terms of potentiality to cause type-2 diabetes and leukemia [30,31,32]. Scientific evidence indicates that all the health effects due to PM 2.5 and PM 10 are already displayed at the current limits of particulate concentrations allowed in EU Member States, both in terms of all-cause mortality and cause-specific mortality (i.e., cardiopulmonary diseases and lung cancer) [21]. However, environmental data provided by official regional or national agencies—used by decision makers to adopt preventive measures such as limitations on urban traffic or domestic heating—are still referred to air quality standards established by the law (usually on the basis of standards set at European level, at least for the EU).These legal thresholds, however, are not fully in line with the levels recommended by the WHO to protect the population against all impacts from air pollution, particularly children or more vulnerable people [24]. A stronger cooperation between environmental agencies and health authorities is needed to address the new challenges to human and planetary health arising from air pollution and climate change. Finally, it is important to provide, in a systematic way, a medical reading of environmental monitoring data, and guarantee the application of the precautionary principle enshrined in Article 191 of the Treaty on the Functioning of the European Union and in the communication of 22 February 2000 of the European Commission. Health authorities, both at national and regional or local level, should integrate their medical staff with new professionals and researchers adequately trained in environmental sciences to foster population health protection against air pollution. For this purposes, multi-disciplinary research units or teams should be established by local health authorities on environmental health topics, working together with medical staff and environmental agencies for a mutual integration of competencies.

Author Contributions

M.I., P.P., E.M. and A.M. equally contributed to concive, write and revise the article. All authors have read and agreed to the published version of the manuscript.

Funding

No external funding source.

Conflicts of Interest

The authors declare no conflict of interest.

References

  1. World Health Organization; Occupational and Environmental Health Team. WHO Air Quality Guidelines for Particulate Matter, Ozone, Nitrogen Dioxide and Sulfur Dioxide: Global Update 2005: Summary of Risk Assessment; World Health Organization: Geneva, Switzerland, 2006; Available online: http://apps.who.int/iris/bitstream/10665/69477/1/WHO_SDE_PHE_OEH_06.02_eng.pdf (accessed on 2 March 2020).
  2. EEA. Air Quality in Europe—2019 Report; No 10/2019; European Environment Agency: Copenhagen, Denmark, 2019. [Google Scholar]
  3. IARC. Outdoor Air Pollution; IARC MonogrEvalCarcinog Risks Hum; World Health Organization: Geneva, Switzerland, 2013; Volume 109. [Google Scholar]
  4. World Health Organization Media Centre. Available online: https://www.who.int/mediacentre/news/releases/2014/air-pollution/en/ (accessed on 3 April 2019).
  5. Chiabai, A.; Spadaro, J.V.; Neumann, M.B. Valuing deaths or years of life lost? Economic benefits of avoided mortality from early heat warning systems. Mitig. Adapt. Strateg. Glob. Chang. 2018, 23, 1159–1176. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  6. Shi, L.; Zanobetti, A.; Kloog, I.; Coull, B.A.; Koutrakis, P.; Melly, S.J.; Schwartz, J.D. Low-concentration PM2.5 and mortality: Estimating acute and chronic effects in a population-based study. Environ. Health Perspect. 2016, 124, 46–52. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  7. Chan, Y.L.; Wang, B.; Chen, H.; Ho, K.F.; Cao, J.; Hai, G.; Jalaludin, B.; Herbert, C.; Thomas, P.S.; Saad, S.; et al. Pulmonary inflammation induced by low dose particulate matter exposure in mice. Am. J. Physiol. Lung Cell.Mol. Physiol. 2019. [Google Scholar] [CrossRef] [PubMed]
  8. Badaloni, C.; Cesaroni, G.; Cerza, F.; Davoli, M.; Brunekreef, B.; Forastiere, F. Effects of long-term exposure to particulate matter and metal components on mortality in the Rome longitudinal study. Environ. Int. 2017, 109, 146–154. [Google Scholar] [CrossRef]
  9. Samoli, E.; Stafoggia, M.; Rodopoulou, S.; Ostro, B.; Declercq, C.; Alessandrini, E.; Díaz, J.; Karanasiou, A.; Kelessis, A.G.; Le Tertre, A.; et al. MED-PARTICLES Study Group. Associations between fine and coarse particles and mortality in Mediterranean cities: Results from the MED-PARTICLES project. Environ. Health Perspect. 2013, 121, 932–938. [Google Scholar] [CrossRef]
  10. Dominici, F.; McDermott, A.; Daniels, M.; Zeger, S.L.; Samet, J.M. Revised analyses of the National Morbidity, Mortality, and Air Pollution Study: Mortality among residents of 90 cities. J. Toxicol. Environ. Health A 2005, 68, 1071–1092. [Google Scholar] [CrossRef]
  11. Ostro, B.; Feng, W.Y.; Broadwin, R.; Green, S.; Lipsett, M. The effects of components of fine particulate air pollution on mortality in California: Results from CALFINE. Environ. Health Perspect. 2007, 115, 13–19. [Google Scholar] [CrossRef] [Green Version]
  12. Gryparis, A.; Forsberg, B.; Katsouyanni, K.; Analitis, A.; Touloumi, G.; Schwartz, J.; Samoli, E.; Medina, S.; Anderson, H.R.; Niciu, E.M.; et al. Acute eff ects of ozone on mortality from the “air pollution and health: A European approach” project. Am. J. Respir. Crit. Care Med. 2004, 170, 1080–1087. [Google Scholar] [CrossRef]
  13. Forastiere, F.; Stafoggia, M.; Berti, G.; Bisanti, L.; Cernigliaro, A.; Chiusolo, M.; Mallone, S.; Miglio, R.; Pandolfi, P.; Rognoni, M.; et al. Particulate matter and daily mortality: A case-crossover analysis of individual effect modifiers. Epidemiology 2008, 19, 571–580. [Google Scholar] [CrossRef]
  14. Samet, J.M.; Dominici, F.; Curriero, F.C.; Coursac, I.; Zeger, S.L. Fine Particulate Air Pollution and Mortality in 20 U.S. Cities, 1987–1994. N. Engl. J. Med. 2000, 343, 1742–1749. [Google Scholar] [CrossRef]
  15. Gehring, U.; Heinrich, J.; Krämer, U.; Grote, V.; Hochadel, M.; Sugiri, D.; Kraft, M.; Rauchfuss, K.; Eberwein, H.; Wichmann, H. Long-Term Exposure to Ambient Air Pollution and Cardiopulmonary Mortality in Women. Epidemiology 2006, 17, 545–551. [Google Scholar] [CrossRef] [PubMed]
  16. Brunekreef, B.; Beelen, R.; Hoek, G.; Schouten, L.; Bausch-Goldbohm, S.; Fischer, P.; Armstrong, B.; Hughes, E.; Jerrett, M.; Van den Brandt, P. Effects of long-term exposure to traffic-related air pollution on respiratory and cardiovascular mortality in the Netherlands: The NLCS-AIR study. Res. Rep. Health Eff. Inst. 2009, 139, 5–89. [Google Scholar]
  17. Raaschou-Nielsen, O.; Andersen, Z.J.; Beelen, R.; Samoli, E.; Stafoggia, M.; Weinmayr, G.; Homann, B.; Fischer, P.; Nieuwenhuijsen, M.J.; Brunekreef, B.; et al. Air pollution and lung cancer incidence in 17 European cohorts: Prospective analyses from the European Study of Cohorts for Air Pollution Eects (ESCAPE). Lancet Oncol. 2013, 14, 813–822. [Google Scholar] [CrossRef]
  18. Faustini, A.; Stafoggia, M.; Berti, G.; Bisanti, L.; Chiusolo, M.; Cernigliaro, A.; Mallone, S.; Primerano, R.; Scarnato, C.; Simonato, L.; et al. The relationship between ambient particulate matter and respiratory mortality: A multi-city study in Italy. Eur. Respir. J. 2011, 38, 538–547. [Google Scholar] [CrossRef] [Green Version]
  19. Vigotti, M.A.; Chiaverini, F.; Biagiola, P.; Rossi, G. Urban air pollution and emergency visits for respiratory complaints in Pisa, Italy. J. Toxicol. Environ. Health A 2007, 70, 266–269. [Google Scholar] [CrossRef]
  20. Pope, C.A., III; Burnett, R.T.; Thun, M.J.; Calle, E.E.; Krewski, D.; Ito, K.; Thurston, G.D. Lung cancer, cardiopulmonary mortality, and long-term exposure to fine particulate air pollution. JAMA 2002, 287, 1132–1141. [Google Scholar] [CrossRef] [Green Version]
  21. European Commission Working Document (2019) 427. Fitness Check of the Ambient Air Quality Directives.
  22. European Commission, COM(2019) 640 Final. The European Green Deal. Available online: https://ec.europa.eu/environment/air/pdf/SWD_2019_427_F1_AAQ%20Fitness%20Check.pdf (accessed on 13 March 20).
  23. WHO. Review of Evidence on Health Aspects of Air Pollution—REVIHAAP Project: Final Technical Report; WHO: Geneva, Switzerland, 2013; Available online: http://www.euro.who.int/__data/assets/pdf_file/0004/193108/REVIHAAP-Final-technical-report-final-version.pdf?ua=1 (accessed on 13 March 2020).
  24. Beelen, R.; Hoek, G.; Van den Brandt, P.A.; Goldbohm, R.A.; Fischer, P.; Schouten, L.J.; Armstrong, B.; Brunekreef, B. Long-term exposure to traffic-related air pollution and lung cancer risk. Epidemiology 2008, 5, 702–710. [Google Scholar] [CrossRef]
  25. Vineis, P.; Hoek, G.; Krzyzanowski, M.; Vigna-Taglianti, F.; Veglia, F.; Airoldi, L.; Autrup, H.; Dunning, A.; Garte, S.; Hainaut, P.; et al. Air pollution and risk of lung cancer in a prospective study in Europe. Int. J. Cancer 2006, 119, 169–174. [Google Scholar] [CrossRef]
  26. Colais, P.; Serinelli, M.; Faustini, A.; Stafoggia, M.; Randi, G.; Tessari, R.; Chiusolo, M.; Pacelli, B.; Mallone, S.; Vigotti, M.A.; et al. Air pollution and urgent hospital admissions in nine Italian cities. Results of the EpiAir Project. Epidemiol. Prev. 2009, 33 (Suppl. 1), 77–94. [Google Scholar]
  27. Biggeri, A.; Bellini, P.; Terracini, B. Meta-analysis of the Italian studies on short-term effects of air pollution—MISA 1996–2002. Epidemiol. Prev. 2004, 28, 4–100. [Google Scholar]
  28. Anderson, H.R.; Spix, C.; Medina, S.; Schouten, J.P.; Castellsague, J.; Rossi, G.; Zmirou, D.; Touloumi, G.; Wojtyniak, B.; Ponka, A.; et al. Air pollution and daily admissions for chronic obstructive pulmonary disease in 6 European cities: Results from the APHEA project. Eur. Respir. J. 1997, 10, 1064–1071. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  29. Magnani, C.; Mattioli, S.; Miligi, L.; Ranucci, A.; Rondelli, R.; Salvan, A.; Bisanti, L.; Masera, G.; Rizzari, C.; Zambon, P.; et al. SETIL: Italian multicentric epidemiological case-control study on risk factors for childhoodleukaemia, non-hodgkin lymphoma and neuroblastoma: Study population and prevalence of risk factors inItaly. Ital. J. Pediatr. 2014, 40, 103. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  30. Power, M.C.; Adar, S.D.; Yanosky, J.D.; Weuve, J. Exposure to air pollution as a potential contributor to cognitive function, cognitive decline, brain imaging, and dementia: A systematic review of epidemiologic research. Neurotoxicology 2016, 56, 235–253. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  31. Renzi, M.; Cerza, F.; Gariazzo, C.; Agabiti, N.; Cascini, S.; Di Domenicantonio, R.; Davoli, M.; Forastiere, F.; Cesaroni, G. Air pollution and occurrence of type 2 diabetes in a large cohort study. Environ. Int. 2018, 112, 68–76. [Google Scholar] [CrossRef]
  32. EUR-Lex. Access to European Union Law. Available online: https://eur-lex.europa.eu/legal-content/EN/TXT/?uri=LEGISSUM:l32042 (accessed on 2 March 2020).
Table 1. Premature deaths and years of life lost (YYL) attributable to PM2.5, NO2 and O3 exposure in 41 European countries and the EU-28. Data concerning year 2018 (modified from EEA 2019 Air Quality Report)2.
Table 1. Premature deaths and years of life lost (YYL) attributable to PM2.5, NO2 and O3 exposure in 41 European countries and the EU-28. Data concerning year 2018 (modified from EEA 2019 Air Quality Report)2.
CountryPopulation
(1000)
Premature Deaths Due to PM2.5YYL
Due to PM2.5
Premature Deaths Due to NO2YYL
Due to NO2
Premature Deaths Due to O3YYL Due to O3
Austria8700530060,200100012,2002704000
Belgium11,311760077,600160016,2001802400
Bulgaria715413,100142,000110064002803700
Croatia4191530046,90026045001902500
Cyprus1184580740024030030410
Czechia10,5549600105,50024051003505000
Denmark5707270030,1008086090980
Estonia13165006300<14020230
Finland5487150016,000<147060570
France64,97733,200414,7007500112,400140021,600
Germany 82,17659,600638,50011,900134,200240031,800
Greece10,78412,900120,700290023,1006406400
Hungary983012,100139,30077014,3003806000
Ireland4726110012,0005031030230
Italy60,66658,600593,70014,600200,700300032,100
Latvia1969170017,60060140060600
Lithuania2889260027,4002076070940
Luxembourg57623027005051010110
Malta4502102700<118020180
Netherlands16,9799200103,800150019,9002703300
Poland37,96743,100533,800150020,40011003300
Portugal9809490056,300610910032016,600
Romania19,76123,400271,600260014,1004903200
Slovakia5426480059,9002027001602600
Slovenia2064170020,000701800701100
Spain44,14524,100290,500770092,400150019,100
Sweden9851290028,3003010001201400
UK65,37931,800324,90011,80099,7005306400
Albania2876510014,5007013001806890
Andorra7340540<140<540
Bosnia and Herzegovina3516540041,7002017001202000
Iceland33360670<130<55
Kosovo 1772380036,300206501001300
Liechtenstein3820210<130<520
Monaco383029010270<520
Montenegro6226307300<126020410
North Macedonia2071340030,4001101200701100
Norway5211130012,900130200050550
San Marino3330280<110<520
Serbia707613,700127,800150017962804300
Switzerland8327370042,80062010,5002403300
EU-28506,028374,0004,150,00068,000795,00014,000180,000
Total538,014412,0004,446,00071,000821,00015,100193,800

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MDPI and ACS Style

Iriti, M.; Piscitelli, P.; Missoni, E.; Miani, A. Air Pollution and Health: The Need for a Medical Reading of Environmental Monitoring Data. Int. J. Environ. Res. Public Health 2020, 17, 2174. https://0-doi-org.brum.beds.ac.uk/10.3390/ijerph17072174

AMA Style

Iriti M, Piscitelli P, Missoni E, Miani A. Air Pollution and Health: The Need for a Medical Reading of Environmental Monitoring Data. International Journal of Environmental Research and Public Health. 2020; 17(7):2174. https://0-doi-org.brum.beds.ac.uk/10.3390/ijerph17072174

Chicago/Turabian Style

Iriti, Marcello, Prisco Piscitelli, Eduardo Missoni, and Alessandro Miani. 2020. "Air Pollution and Health: The Need for a Medical Reading of Environmental Monitoring Data" International Journal of Environmental Research and Public Health 17, no. 7: 2174. https://0-doi-org.brum.beds.ac.uk/10.3390/ijerph17072174

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