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Articles

(Ultra) Fine particle concentrations and exposure in different indoor and outdoor microenvironments during physical exercising

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  • Alves, C., A. I. Calvo, L. Marques, A. Castro, T. Nunes, E. Coz, and R. Fraile. 2014. Particulate matter in the indoor and outdoor air of a gymnasium and a fronton. Environ. Sci. Pollut. Res. 21:12390–402. doi:10.1007/s11356-014-3168-1.
  • Anderson, J. O., J. G. Thundiyil, and A. Stolbach. 2012. Clearing the air: A review of the effects of particulate matter air pollution on human health. J. Med. Toxicol. 8:166–75. doi:10.1007/s13181-011-0203-1.
  • Andrade, A., and F. H. Dominski. 2018. Indoor air quality of environments used for physical exercise and sports practice: Systematic review. J. Environ. Manage. 206:577–86. doi:10.1016/j.jenvman.2017.11.001.
  • Annesi-Maesano, I., N. Baiz, N., . S. Banerjee, P. Rudnai, and S. Rive. 2013. Indoor air quality and sources in schools and related health effects. J. Toxicol. Environ. Health B 16:491–550. doi:10.1080/10937404.2013.853609.
  • Bekö, G., B. U. Kjeldsen, Y. Olsen, J. Schipperijn, A. Wierzbicka, D. G. Karottki, J. Toftum, S. Loft, and G. Clausen. 2015b. Contribution of various microenvironments to the daily personal exposure to ultrafine particles: Personal monitoring coupled with GPS tracking. Atmos. Environ. 110:122–29. doi:10.1016/j.atmosenv.2015.03.053.
  • Bekö, G., C. J. Weschler, A. Wierzbicka, D. G. Karottki, J. Toftum, S. Loft, and G. Clausen. 2013. Ultrafine particles: Exposure and source apportionment in 56 Danish homes. Environ. Sci. Technol. 47:10240–48. doi:10.1021/es402429h.
  • Bekö, G., J. G. Allen, C. J. Weschler, J. Vallarino, and D. Spengler. 2015a. Impact of cabin ozone concentrations on passenger reported symptoms in commercial aircraft. PLoS One 10:e0128454. doi:10.1371/journal.pone.0128454.
  • Bos, I., P. De Boever, L. Int Panis, and R. Meeusen. 2014. Physical activity, air pollution and the brain. Sports Med. 44:1505–18. doi:10.1007/s40279-014-0222-6.
  • Buonanno, G., F. Fuoco, S. Marini, and L. Stabile. 2012. Particle resuspension in school gyms during physical activities. Aerosol Air Qual. Res. 12:803–13. doi:10.4209/aaqr.2011.11.0209.
  • Castro, A., A. I. Calvo, C. Alves, E. Alonso-Blanco, E. Coz, L. Marques, T. Nunes, J. M. Fernández-Guisuraga, and R. Fraile. 2015. Indoor aerosol size distributions in a gymnasium. Sci. Total Environ. 524–525:178–86. doi:10.1016/j.scitotenv.2015.03.118.
  • Chen, R., B. Hu, Y. Liu, J. Xu, G. Yang, D. Xu, and C. Chen. 2016. Beyond PM2.5: The role of ultrafine particles on adverse health effects of air pollution. Biochim. Biophys. Acta, Gen. Subj. 1860:2844–55. doi:10.1016/j.bbagen.2016.03.019.
  • Cohen, A., M. Brauer, R. Burnett, R. Anderson, J. Frostad, K. Estep, K. Balakrishnan, B. Brunekreef, L. Dandona, R. Dandona, et al. 2017. Estimates and 25-year trends of the global burden of disease attributable to ambient air pollution: An analysis of data from the Global Burden of Diseases Study 2015. Lancet 389:1907–18. doi:10.1016/S0140-6736(17)30505-6.
  • Fonseca, J., K. Slezakova, S. Morais, and M. C. Pereira. 2014. Assessment of ultrafine particles in Portuguese preschools: Levels and exposure doses. Indoor Air 24:618–28. doi:10.1111/ina.12114.
  • GBD 2017 Risk Factor Collaborators. 2018. Global, regional, and national comparative risk assessment of 84 behavioural, environmental and occupational, and metabolic risks or clusters of risks for 195 countries and territories, 1990–2017: A systematic analysis for the Global Burden of Disease Study 2017. Lancet 392: 1923–94. doi:10.1016/S0140-6736(18)32225-6.
  • Hallal, P. C., L. B. Andersen, F. C. Bull, R. Guthold, W. Haskelln, U. Ekelund, J. R. Alkandari, A. E. Bauman, S. N. Blair, R. C. Brownson, et al. 2012. Global physical activity levels: Surveillance progress, pitfalls, and prospects. Lancet 380:247–57. doi:10.1016/S0140-6736(12)60646-1.
  • Heal, M., P. Kumar, and R. M. Harrison. 2012. Particles, air quality, policy and health. Chem. Soc. Rev. 41:6606–30. doi:10.1039/c2cs35076a.
  • Health Effects Institute. 2018. State of global air 2018. Special report. Boston, MA: Health Effects Institute.
  • Heinzerling, A., J. Hsu, and F. Yip. 2016. Respiratory health effects of ultrafine particles in children: A literature review. Water Air Soil Pollut. 227:227. doi:10.1007/s11270-015-2726-6.
  • Hodas, N., M. Loh, H.-M. Shin, D. Li, D. Bennett, T. E. McKone, O. Jolliet, C. J. Weschler, M. Jantunen, P. Lioy, et al. 2016. Indoor inhalation intake fractions of fine particulate matter: Review of influencing factors. Indoor Air 26:836–56. doi:10.1111/ina.12268.
  • Horne, B. D., E. A. Joy, M. G. Hofmann, P. H. Gesteland, J. B. Cannon, J. S. Lefler, D. Blagev, E. K. Korgenski, N. Torosyan, G. I. Hansen, et al. 2018. Short-term elevation of fine particulate matter air pollution and acute lower respiratory infection. Am. J. Respir. Crit. Care Med. 198:759–66. doi:10.1164/rccm.201709-1883OC.
  • Hussein, T., J. Löndahl, P. Paasonen, A. J. Koivisto, T. Petäjä, K. Hämeri, and M. Kulmala. 2013. Modeling regional deposited dose of submicron aerosol particles. Sci. Total Environ. 458–460:140–49. doi:10.1016/j.scitotenv.2013.04.022.
  • Kic, P. 2016. Dust pollution in the sport facilities. Agron. Res. 14:75–81.
  • Koivisto, A. J., J. E. Palomäki, A. K. Viitanen, K. M. Siivola, I. K. Koponen, M. Yu, T. S. Kanerva, H. Norppa, H. T. Alenius, T. Hussein, et al. 2014. Range-finding risk assessment of inhalation exposure to nanodiamonds in a laboratory environment. Int. J. Environ. Res. Public Health 11:5382–402. doi:10.3390/ijerph110505382.
  • Koivisto, A. J., K. I. Kling, A. S. Fonseca, A. B. Bluhme, M. Moreman, M. Yud, A. L. Costa, B. Giovanni, S. Ortelli, W. Fransman, et al. 2018. Dip coating of air purifier ceramic honeycombs with photocatalytic TiO2 nanoparticles: A case study for occupational exposure. Sci. Total Environ. 630:1283–91. doi:10.1016/j.scitotenv.2018.02.316.
  • Kumar, P., L. Morawska, W. Birmili, P. Paasonen, M. Hu, M. Kulmala, R. M. Harrison, L. Norford, and R. Britter. 2014. Ultrafine particles in cities. Environ. Int. 66:1–10. doi:10.1016/j.envint.2014.01.013.
  • Kumar, P., L. Pirjola, M. Ketzel, and R. M. Harrison. 2013. Nanoparticle emissions from 11 non-vehicle exhaust sources - A review. Atmos. Environ. 67:252–77. doi:10.1016/j.atmosenv.2012.11.011.
  • Landrigan, P. J., R. Fuller, N. J. R. Acosta, O. Adeyi, R. Arnold, N. N. Basu, A. B. Baldé, R. Bertollini, S. Bose-O’Reilly, J. I. Boufford, et al. 2018. The Lancet Commission on pollution and health. Lancet 391:462–512. doi:10.1016/S0140-6736(17)32345-0.
  • Lee, B. J., B. Kim, and K. Lee. 2014. Air pollution exposure and cardiovascular disease. Toxicol. Res. 30:71–75. doi:10.5487/TR.2014.30.2.071.
  • Lee, I. M., E. J. Shiroma, F. Lobelo, P. Puska, S. N. Blair, P. T. Katzmarzyk, J. R. Alkandari, L. B. Andersen, A. E. Bauman, R. C. Brownson, et al. 2012. Effect of physical inactivity on major non-communicable diseases worldwide: An analysis of burden of disease and life expectancy. Lancet 380:219–29. doi:10.1016/S0140-6736(12)61031-9.
  • Li, X., K. Tang, J. X-R, Y. Xiang, J. Xu, -L.-L. Yang, N. Wang, Y.-F. Li, A.-L. Ji, L.-X. Zhou, et al. 2018. Short-term air pollution exposure is associated with hospital length of stay and hospitalization costs among inpatients with type 2 diabetes: A hospital-based study. J. Toxicol. Environ. Health A 82:819–29. doi:10.1080/15287394.2018.1491912.
  • Lovinsky-Desir, S., K. H. Jung, A. G. Rundle, L. A. Hoepner, J. B. Bautista, F. P. Perera, S. N. Chillrud, M. S. Perzanowski, and R. L. Miller. 2016. Physical activity, black carbon exposure and airway inflammation in an urban adolescent cohort. Environ. Res. 151:756–62. doi:10.1016/j.envres.2016.09.005.
  • Morawska, L., A. Afshari, G. N. Bae, G. Buonanno, C. Y. H. Chao, O. H€anninen, W. Hofmann, C. Isaxon, E. R. Jayaratne, P. Pasanen, et al. 2013. Indoor aerosols: From personal exposure to risk assessment. Indoor Air 23:462–87. doi:10.1111/ina.12044.
  • Morawska, L., Z. Ristovski, E. R. Jayaratne, D. U. Keogh, and X. Ling. 2008. Ambient nano and ultrafine particles from motor vehicle emissions: Characteristics, ambient processing and implications on human exposure. Atmos. Environ. 42:8113–38. doi:10.1016/j.atmosenv.2008.07.050.
  • Nazaroff, W. W. 2004. Indoor particle dynamics. Indoor Air 14:175–83. doi:10.1111/j.1600-0668.2004.00286.x.
  • Oliveira, M., K. Slezakova, C. Delerue-Matos, M. C. Pereira, and S. Morais. 2019. Children environmental exposure to particulate matter and polycyclic aromatic hydrocarbons and biomonitoring in school environments: A review on indoor and outdoor exposure levels, major sources and health impacts. Environ. Int. 124:180–204. doi:10.1016/j.envint.2018.12.052.
  • Pandey, J. S., R. Kumar, and S. Devott. 2005. Health risks of NO2, SPM and SO2 in Delhi (India). Atmos. Environ. 39:6868–74. doi:10.1016/j.atmosenv.2005.08.004.
  • Pasqua, L. A., M. V. Damasceno, R. Cruz, M. Matsuda, M. Garcia Martins, M. A. E. Lima-Silva, M. Marquezini, P. H. N. Saldiva, and R. Bertuzzi. 2018. Exercising in air pollution: The cleanest versus dirtiest cities challenge. Int. J. Environ. Res. Public Health 15:E1502. doi:10.3390/ijerph15071502.
  • Qin, F., Y. Yang, S. T. Wang, Y. N. Dong, M. X. Xu, Z. W. Wang, and J. X. Zhao. 2019. Exercise and air pollutants exposure: A systematic review and meta-analysis. Life Sci. 218:153–64. doi:10.1016/j.lfs.2018.12.036.
  • Roe, J., and P. Aspinall. 2011. The restorative benefits of walking in urban and rural settings in adults with good and poor mental health. Health Place 17:103–13. doi:10.1016/j.healthplace.2010.09.003.
  • Rufo, J. C., J. Madueria, I. Paciencia, K. Slezakova, M. C. Pereira, C. Pereira, J. P. Teixeira, M. Pinto, A. Moreira, and E. O. Fernandes. 2015. Exposue of children to ultrafine particles in primary schools in Portugal. J. Toxicol. Environ. Health A 78:904–14. doi:10.1080/15287394.2015.1048866.
  • Saunders, K. H., A. P. Shukla, L. I. Igel, R. B. Kumar, and L. J. Aronne. 2016. Pharmacotherapy for obesity. Endocrinol. Metab. Clin. 45:521–38. doi:10.5487/TR.2014.30.2.071.
  • Shi, Z., K. He, Z. Yu, X. Yao, F. Yang, Y. Ma, R. Ma, Y. Jia, and J. Zhang. 2007. Diurnal variation of number concentration and size distribution of ultrafine particles in the urban atmosphere of Beijing in winter. J. Environ. Sci. 19:933–38. doi:10.1016/S1001-0742(07)60154-5.
  • Slezakova, K., C. Peixoto, M. Oliveira, C. Delerue-Matos, M. C. Pereira, and S. Morais. 2018a. Indoor particulate pollution in fitness centres with emphasis on ultrafine particles. Environ. Pollut. 233:180–93. doi:10.1016/j.envpol.2017.10.050.
  • Slezakova, K., C. Peixoto, M. C. Pereira, and S. Morais. 2018b. Indoor air quality in health clubs: Impact of occupancy and type of performed activities on exposure levels. J. Hazard. Mater. 359:56–66. doi:10.1016/j.jhazmat.2018.07.015.
  • Slezakova, K., E. de Oliveira Fernandes, and M. C. Pereira. 2019. Assessment of ultrafine particles in primary schools: emphasis on different indoor microenvironments. Environmental Pollution 246:885–895. doi:10.1016/j.envpol.2018.12.073.
  • Slezakova, K., M. Alvim-Ferraz, and M. C. Pereira. 2012. Elemental characterization of indoor breathable particles at a Portuguese urban hospital. J. Toxicol. Environ. Health A 75:909–19. doi:10.1080/15287394.2012.690707.
  • Slezakova, K., S. Morais, and M. C. Pereira. 2014. Trace metals in size-fractionated particulate matter in a Portuguese hospital: Exposure risks assessment and comparisons with other countries. Environ. Sci. Pollut. Res. 21:3604–20. doi:10.1007/s11356-013-2316-3.
  • Stacey, B. 2019. Measurement of ultrafine particles at airports: A review. Atmos. Environ. 198:463–77. doi:10.1016/j.atmosenv.2018.10.041.
  • Stone, V., M. R. Mille, M. J. D. Clift, A. Elder, N. L. Mills, P. Møller, R. P. F. Schins, U. Vogel, W. G. Kreyling, K. A. Jensen, et al. 2017. Nanomaterials versus ambient ultrafine particles: An opportunity to exchange toxicology. Environ. Health Perspect. 125:106002. doi:10.1289/EHP424.
  • Strak, M., H. Boogaard, K. Meliefste, M. Oldenwening, M. Zuurbier, B. Brunekreef, and G. Hoek. 2009. Respiratory health effects of ultrafine and fine particle exposure in cyclists. Occup. Environ. Med. 67:118–24. doi:10.1136/oem.2009.046847.
  • Tainio, M., A. J. de Nazelle, T. Götschi, T. Kahlmeier, D. Rojas-Rueda, M. Nieuwenhuijsen, T. H. de Sá, P. Kelly, and J. Woodcock. 2016. Can air pollution negate the health benefits of cycling and walking? Prev. Med. 87:233–36. doi:10.1016/j.ypmed.2016.02.002.
  • Terzano, C., F. Di Stefano, V. Conti, V. Graziani, and A. Petroianni. 2010. Air pollution ultrafine particles: Toxicity beyond the lung. Eur. Rev. Med. Pharmacol. Sci. 14:809–21.
  • Thai, A., I. McKendry, and M. Brauer. 2008. Particulate matter exposure along designated bicycle routes in Vancouver, British Columbia. Sci. Total Environ. 405:26–35. doi:10.1016/j.scitotenv.2008.06.035.
  • Trnjar, K., S. Pintarić, M. Mornar Jelavić, V. Nesek, J. Ostojić, S. Pleština, A. Šikić, and H. Pintarić. 2017. Correlation between occurrence and deterioration of respiratory diseases and air pollution within the legally permissible limits. Acta Clin. Croat. 56:210–17. doi:10.20471/acc.2017.56.02.03.
  • Tsai, -S.-S., C.-Y. Tsai, and Y. C-Y. 2018. Fine particukate air pollution associated with increased risk of hospitals admissions for hypertension in a tropical city, Kaohsiung, Taiwan. J. Toxicol. Environ. Health A 82:567–75. doi:10.1080/15287394.2018.1460788.
  • USEPA (U.S. Environmental Protection Agency). 2011. Exposure factors handbook 2011 edition (Final). Washington, DC: Environmental Protection Agency.
  • Vinzents, P. S., P. Møller, M. Sørensen, L. E. Knudsen, O. Hertel, F. P. Jensen, B. Schibye, and S. Loft. 2005. Personal exposure to ultrafine particles and oxidative DNA damage. Environ. Health Perspect. 113:1485–90. doi:10.1289/ehp.7562.
  • Weinbruch, S., T. Dirsch, K. Kandler, M. Ebert, G. Heimburger, and F. Hohenwarter. 2012. Reducing dust exposure in indoor climbing gyms. J. Environ. Monit. 14:2114–20. doi:10.1039/c2em30289f.
  • Wells, E. M., M. Berges, M. Metcalf, A. Kinsella, K. Foreman, D. G. Dearborn, and S. Greenberg. 2015. Indoor air quality and occupant comfort in homes with deep versus conventional energy efficiency renovations. Build. Environ. 93:331–38. doi:10.1016/j.buildenv.2015.06.021.
  • WHO (World Health Organization). 2009. Global health risks. Mortality and burden of disease attributable to major risks. Switzerland, Geneva: World Health Organization.
  • WHO (World Health Organization). 2010. WHO guidelines for indoor air quality: Selected pollutants. Copenhagen, Denmark: WHO Regional Office for Europe.
  • WHO (World Health Organization). 2015. European food and nutrition action plan 2015–2020. Copenhagen, Denmark: WHO Regional Office for Europe.
  • WHO (World Health Organization). 2016. Physical activity strategy for the WHO European Region 2016–2025. Copenhagen, Denmark: WHO Regional Office for Europe.
  • WHO (World Health Organization). 2018. Global action plan on physical activity 2018–2030: More active people for healthier world. Switzerland, Geneva: World Health Organization.
  • Yang, C.-Y., Y.-H. Weng, and Y.-W. Chiu. 2018. Relationship between air pollution and daily suicide mortality: A time-stratified case-crossover study in Taipei. J. Toxicol. Environ. Health A 82:261–67. doi:10.1080/15287394.2019.1589109.
  • Zhang, J. J., J. E. McCreanor, P. Cullinan, K. F. Chung, P. Ohman-Strickland, I. K. Han, L. Järup, and M. J. Nieuwenhuijsen. 2009. Health effects of real-world exposure to diesel exhaust in persons with asthma. Res. Rep. 5–109:discussion 111–123.
  • Žitnik, M., K. Bučar, B. Hiti, Ž. Barba, Z. Rupnik, A. Založnik, E. Žitnik, L. Rodrìguez, I. Mihevc, and J. Žibert. 2016. Exercise-induced effects on a gym atmosphere. Indoor Air 26:468–77. doi:10.1111/ina.12226.

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