February 10, 2026
The human airborne exposome | Nature Health
  • Brook, R. D. et al. Particulate matter air pollution and cardiovascular disease: an update to the scientific statement from the American Heart Association. Circulation 121, 2331–2378 (2010).

    PubMed 
    CAS 

    Google Scholar 

  • Pope, C. A. & Dockery, D. W. Health effects of fine particulate air pollution: lines that connect. J. Air Waste Manag. Assoc. 56, 709–742 (2006).

    PubMed 
    CAS 

    Google Scholar 

  • Wild, C. P. Complementing the genome with an “exposome”: the outstanding challenge of environmental exposure measurement in molecular epidemiology. Cancer Epidemiol. Biomark. Prev. 14, 1847–1850 (2005).

    CAS 

    Google Scholar 

  • Vermeulen, R., Schymanski, E. L., Barabási, A.-L. & Miller, G. W. The exposome and health: where chemistry meets biology. Science 367, 392–396 (2020).

    PubMed 
    PubMed Central 
    CAS 

    Google Scholar 

  • Nazaroff, W. W. Exploring the consequences of climate change for indoor air quality. Environ. Res. Lett. 8, 015022 (2013).

    CAS 

    Google Scholar 

  • Gao, P. The exposome in the era of one health. Environ. Sci. Technol. 55, 2790–2799 (2021).

    PubMed 
    CAS 

    Google Scholar 

  • Kelly, F. J. & Fussell, J. C. Size, source and chemical composition as determinants of toxicity attributable to ambient particulate matter. Atmos. Environ. 60, 504–526 (2012).

    CAS 

    Google Scholar 

  • Cassee, F. R., Héroux, M.-E., Gerlofs-Nijland, M. E. & Kelly, F. J. Particulate matter beyond mass: recent health evidence on the role of fractions, chemical constituents and sources of emission. Inhal. Toxicol. 25, 802–812 (2013).

    PubMed 
    PubMed Central 
    CAS 

    Google Scholar 

  • Reiss, R. et al. Evidence of health impacts of sulfate- and nitrate-containing particles in ambient air. Inhal. Toxicol. 19, 419–449 (2007).

    PubMed 
    CAS 

    Google Scholar 

  • Gao, P. et al. Precision environmental health monitoring by longitudinal exposome and multi-omics profiling. Genome Res. 32, 1199–1214 (2022).

    PubMed 
    PubMed Central 
    CAS 

    Google Scholar 

  • Schwarze, P. E. et al. Particulate matter properties and health effects: consistency of epidemiological and toxicological studies. Hum. Exp. Toxicol. 25, 559–579 (2006).

    PubMed 
    CAS 

    Google Scholar 

  • Bell, M. L., Dominici, F., Ebisu, K., Zeger, S. L. & Samet, J. M. Spatial and temporal variation in PM2.5 chemical composition in the United States for health effects studies. Environ. Health Perspect. 115, 989–995 (2007).

    PubMed 
    PubMed Central 
    CAS 

    Google Scholar 

  • Laden, F., Neas, L. M., Dockery, D. W. & Schwartz, J. Association of fine particulate matter from different sources with daily mortality in six US cities. Environ. Health Perspect. 108, 941–947 (2000).

    PubMed 
    PubMed Central 
    CAS 

    Google Scholar 

  • Xu, J., Hu, W., Liang, D. & Gao, P. Photochemical impacts on the toxicity of PM2.5. Crit. Rev. Environ. Sci. Technol. 52, 130–156 (2022).

    CAS 

    Google Scholar 

  • Weschler, C. J. & Nazaroff, W. W. Semivolatile organic compounds in indoor environments. Atmos. Environ. 42, 9018–9040 (2008).

    CAS 

    Google Scholar 

  • Liu, Y. et al. PAHs in urban soils of two Florida cities: background concentrations, distribution, and sources. Chemosphere 214, 220–227 (2019).

    PubMed 
    CAS 

    Google Scholar 

  • Niu, S. et al. Personal wearable sampler for per- and polyfluoroalkyl substances exposure assessment. Environ. Sci. Technol. Lett. 11, 301–307 (2024).

    CAS 

    Google Scholar 

  • Klepeis, N. E. et al. The National Human Activity Pattern Survey (NHAPS): a resource for assessing exposure to environmental pollutants. J. Expo. Anal. Environ. Epidemiol. 11, 231–252 (2001).

    PubMed 
    CAS 

    Google Scholar 

  • Weschler, C. J. Changes in indoor pollutants since the 1950s. Atmos. Environ. 43, 153–169 (2009).

    CAS 

    Google Scholar 

  • Chen, C. & Zhao, B. Review of relationship between indoor and outdoor particles: I/O ratio, infiltration factor and penetration factor. Atmos. Environ. 45, 275–288 (2011).

    CAS 

    Google Scholar 

  • Pronk, A. et al. Respiratory effects of occupational exposure to air pollution: a systematic review. Occup. Environ. Med. 76, 250–259 (2019).

    Google Scholar 

  • Zhou, Y. & Levy, J. I. Factors influencing the spatial extent of mobile source air pollution impacts: a meta-analysis. BMC Public Health 7, 89 (2007).

    PubMed 
    PubMed Central 

    Google Scholar 

  • Jerrett, M. et al. Spatial analysis of air pollution and mortality in Los Angeles. Epidemiology 16, 727–736 (2005).

    PubMed 

    Google Scholar 

  • Georgopoulos, P. G. et al. A source-to-dose assessment of population exposures to fine PM and ozone in Philadelphia, PA, during a summer 1999 episode. J. Expo. Anal. Environ. Epidemiol. 15, 439–457 (2005).

    PubMed 
    CAS 

    Google Scholar 

  • Sarnat, S. E., Coull, B. A., Schwartz, J., Gold, D. R. & Suh, H. H. Factors affecting the association between ambient concentrations and personal exposures to particles and gases. Environ. Health Perspect. 114, 649–654 (2006).

    PubMed 
    CAS 

    Google Scholar 

  • Wallace, L. et al. Validation of continuous particle monitors for personal, indoor, and outdoor exposures. J. Expo. Sci. Environ. Epidemiol. 21, 49–64 (2011).

    PubMed 
    CAS 

    Google Scholar 

  • Jiang, C. et al. Dynamic human environmental exposome revealed by longitudinal personal monitoring. Cell 175, 277–291 (2018).

    PubMed 
    PubMed Central 
    CAS 

    Google Scholar 

  • Mauderly, J. L. & Samet, J. M. Is there evidence for synergy among air pollutants in causing health effects? Environ. Health Perspect. 117, 1–6 (2009).

    PubMed 
    CAS 

    Google Scholar 

  • Kelly, F. J. & Fussell, J. C. Air pollution and public health: emerging hazards and improved understanding of risk. Environ. Geochem. Health 37, 631–649 (2015).

    PubMed 
    PubMed Central 
    CAS 

    Google Scholar 

  • Sun, Z. et al. Statistical strategies for constructing health risk models with multiple pollutants and their interactions: possible choices and comparisons. Environ. Health 12, 85 (2013).

    PubMed 
    PubMed Central 

    Google Scholar 

  • Zeger, S. L. et al. Exposure measurement error in time-series studies of air pollution: concepts and consequences. Environ. Health Perspect. 108, 419–426 (2000).

    PubMed 
    PubMed Central 
    CAS 

    Google Scholar 

  • Armstrong, B. G. Effect of measurement error on epidemiological studies of environmental and occupational exposures. Occup. Environ. Med. 55, 651–656 (1998).

    PubMed 
    PubMed Central 
    CAS 

    Google Scholar 

  • Rothman, K. J., Greenland, S. & Lash, T. L. Modern Epidemiology (Lippincott Williams & Wilkins, 2008).

  • Clark, N. A. et al. Effect of early life exposure to air pollution on development of childhood asthma. Environ. Health Perspect. 118, 284–290 (2010).

    PubMed 
    CAS 

    Google Scholar 

  • Dominici, F. & Zigler, C. Best practices for gauging evidence of causality in air pollution epidemiology. Am. J. Epidemiol. 179, 1467–1471 (2017).

    Google Scholar 

  • Brauer, M. et al. Exposure assessment for estimation of the global burden of disease attributable to outdoor air pollution. Environ. Sci. Technol. 186, 1303–1309 (2017).

    Google Scholar 

  • Weisel, C. P. Assessing exposure to air toxics relative to asthma. Environ. Health Perspect. 110, 527–537 (2002).

    PubMed 
    PubMed Central 
    CAS 

    Google Scholar 

  • Nazaroff, W. W. Embracing microbes in exposure science. J. Expo. Sci. Environ. Epidemiol. 29, 1–10 (2019).

    PubMed 

    Google Scholar 

  • Jiang, C., Zhang, X., Gao, P., Chen, Q. & Snyder, M. Decoding personal biotic and abiotic airborne exposome. Nat. Protoc. 16, 1129–1151 (2021).

    PubMed 
    CAS 

    Google Scholar 

  • Bowers, R. M. et al. Seasonal variability in bacterial and fungal diversity of the near-surface atmosphere. Environ. Sci. Technol. 47, 12097–12106 (2013).

    PubMed 
    CAS 

    Google Scholar 

  • Meng, Q. Y. et al. Influence of ambient (outdoor) sources on residential indoor and personal PM2.5 concentrations: analyses of RIOPA data. J. Expo. Anal. Environ. Epidemiol. 15, 17–28 (2005).

    PubMed 
    CAS 

    Google Scholar 

  • Leech, J. A., Nelson, W. C., Burnett, R. T., Aaron, S. & Raizenne, M. E. It’s about time: a comparison of Canadian and American time–activity patterns. J. Expo. Anal. Environ. Epidemiol. 12, 427–432 (2002).

    PubMed 

    Google Scholar 

  • Chen, C., Zhao, B. & Weschler, C. J. Indoor exposure to “outdoor PM10”: assessing its influence on the relationship between PM10 and short-term mortality in US cities. Epidemiology 23, 870–878 (2012).

    PubMed 

    Google Scholar 

  • Solomon, P. A., Hopke, P. K., Froines, J. & Scheffe, R. Key scientific findings and policy- and health-relevant insights from the US Environmental Protection Agency’s Particulate Matter Supersites Program and related studies: an integration and synthesis of results. J. Air Waste Manag. Assoc. 58, S3–S92 (2008).

    PubMed 
    CAS 

    Google Scholar 

  • Paulsen, M. H. et al. Evaluation of wearable monitors for personal exposure to air pollution. Environ. Sci. Technol. 55, 8740–8751 (2021).

    Google Scholar 

  • Gao, P. Chasing “emerging” contaminants: an endless journey towards environmental health. Environ. Sci. Technol. 58, 1790–1792 (2024).

    PubMed 
    PubMed Central 
    CAS 

    Google Scholar 

  • Gao, P. Exploring single-cell exposomics by mass spectrometry. Environ. Sci. Technol. 57, 12201–12209 (2023).

    PubMed 
    PubMed Central 
    CAS 

    Google Scholar 

  • Schwarze, P. E. et al. Inflammation-related effects of diesel engine exhaust particles: studies on lung cells in vitro. BioMed Res. Int. 2013, 685142 (2013).

    PubMed 
    PubMed Central 
    CAS 

    Google Scholar 

  • Zanobetti, A. et al. The temporal pattern of mortality responses to air pollution: a multicity assessment of mortality displacement. Epidemiology 13, 87–93 (2002).

    PubMed 

    Google Scholar 

  • Sacks, J. D. et al. Particulate matter-induced health effects: who is susceptible? Environ. Health Perspect. 119, 446–454 (2011).

    PubMed 

    Google Scholar 

  • Oberdörster, G. et al. Translocation of inhaled ultrafine particles to the brain. Inhal. Toxicol. 16, 437–445 (2004).

    PubMed 

    Google Scholar 

  • Rappaport, S. M. & Smith, M. T. Environment and disease risks. Science 330, 460–461 (2010).

    PubMed 
    PubMed Central 
    CAS 

    Google Scholar 

  • Lai, Y. et al. High-resolution mass spectrometry for human exposomics: expanding chemical space coverage. Environ. Sci. Technol. 58, 12784–12822 (2024).

    PubMed 
    PubMed Central 
    CAS 

    Google Scholar 

  • Chung, M. K. et al. Decoding the exposome: data science methodologies and implications in exposome-wide association studies (ExWASs). Exposome 4, osae001 (2024).

    PubMed 
    PubMed Central 

    Google Scholar 

  • Thurston, G. D. et al. Workgroup report: workshop on source apportionment of particulate matter health effects—intercomparison of results and implications. Environ. Health Perspect. 113, 1768–1774 (2005).

    PubMed 
    PubMed Central 

    Google Scholar 

  • Gao, P. et al. Source identification of PAHs in soils based on stable carbon isotopic signatures. Crit. Rev. Environ. Sci. Technol. 48, 923–948 (2018).

    CAS 

    Google Scholar 

  • Gao, P. et al. Emerging and legacy PAHs in urban soils of four small cities: concentrations, distribution, and sources. Sci. Total Environ. 685, 463–470 (2019).

    PubMed 
    CAS 

    Google Scholar 

  • Rappaport, S. M. Implications of the exposome for exposure science. J. Expo. Sci. Environ. Epidemiol. 21, 5–9 (2011).

    PubMed 
    CAS 

    Google Scholar 

  • Zhang, X., Gao, P. & Snyder, M. The exposome in the era of the quantified self. Annu. Rev. Biomed. Data Sci. 4, 255–277 (2021).

    PubMed 

    Google Scholar 

  • Wan, M. et al. Exposomics: a review of methodologies, applications, and future directions in molecular medicine. EMBO Mol. Med. 17, 599–608 (2025).

    PubMed 
    PubMed Central 
    CAS 

    Google Scholar 

  • Jerrett, M. et al. A review and evaluation of intraurban air pollution exposure models. J. Expo. Sci. Environ. Epidemiol. 15, 185–204 (2005).

    CAS 

    Google Scholar 

  • Steinle, S., Reis, S. & Sabel, C. E. Quantifying human exposure to air pollution—moving from static monitoring to spatio-temporally resolved personal exposure assessment. Sci. Total Environ. 443, 184–193 (2013).

    PubMed 
    CAS 

    Google Scholar 

  • Kousa, A. et al. Personal exposures to NO2 in the EXPOLIS-study: relation to residential indoor, outdoor and workplace concentrations in Basel, Helsinki and Prague. Atmos. Environ. 35, 3405–3412 (2001).

    CAS 

    Google Scholar 

  • Hoek, G. et al. A review of land-use regression models to assess spatial variation of outdoor air pollution. Atmos. Environ. 42, 7561–7578 (2008).

    CAS 

    Google Scholar 

  • Gao, P., da Silva, E. B., Townsend, T., Liu, X. & Ma, L. Q. Emerging PAHs in urban soils: concentrations, bioaccessibility, and spatial distribution. Sci. Total Environ. 670, 800–805 (2019).

    PubMed 
    CAS 

    Google Scholar 

  • Vrijheid, M. et al. The human early-life exposome (HELIX): project rationale and design. Environ. Health Perspect. 122, 535–544 (2014).

    PubMed 
    PubMed Central 

    Google Scholar 

  • Miller, G. W. & Banbury Exposomics Consortium. Integrating exposomics into biomedicine. Science 388, 356–358 (2025).

  • Wild, C. P. The exposome: from concept to utility. Int. J. Epidemiol. 41, 24–32 (2012).

    PubMed 

    Google Scholar 

  • Vlaanderen, J. et al. Application of OMICS technologies in occupational and environmental health research; current status and projections. Occup. Environ. Med. 67, 136–143 (2010).

    PubMed 
    CAS 

    Google Scholar 

  • Vineis, P. et al. The exposome in practice: design of the EXPOsOMICS project. Int. J. Hyg. Environ. Health 220, 142–151 (2017).

    PubMed 
    PubMed Central 
    CAS 

    Google Scholar 

  • Lelieveld, J., Evans, J. S., Fnais, M., Giannadaki, D. & Pozzer, A. The contribution of outdoor air pollution sources to premature mortality on a global scale. Nature 525, 367–371 (2015).

    PubMed 
    CAS 

    Google Scholar 

  • Escher, B. I. et al. From the exposome to mechanistic understanding of chemical-induced adverse effects. Environ. Int. 99, 97–106 (2017).

    PubMed 
    CAS 

    Google Scholar 

  • Ankley, G. T. et al. Adverse outcome pathways: a conceptual framework to support ecotoxicology research and risk assessment. Environ. Toxicol. Chem. 29, 730–741 (2010).

    PubMed 
    CAS 

    Google Scholar 

  • Kleinstreuer, N. C. et al. Phenotypic screening of the ToxCast chemical library to classify toxic and therapeutic mechanisms. Nat. Biotechnol. 32, 583–591 (2014).

    PubMed 
    CAS 

    Google Scholar 

  • Gao, P. & Snyder, M. Exposome-wide association study for metabolic syndrome. Front. Genet. 12, 783930 (2021).

    PubMed 
    PubMed Central 
    CAS 

    Google Scholar 

  • Zhou, X. et al. Longitudinal profiling of the microbiome at four body sites reveals core stability and individualized dynamics during health and disease. Cell Host Microbe 32, 506–526 (2024).

    PubMed 
    PubMed Central 
    CAS 

    Google Scholar 

  • Fann, N. et al. Estimating the national public health burden associated with exposure to ambient PM2.5 and ozone. Risk Anal. 32, 81–95 (2012).

    PubMed 

    Google Scholar 

  • Münzel, T. et al. Effects of gaseous and solid constituents of air pollution on endothelial function. Eur. Heart J. 39, 3543–3550 (2018).

    PubMed 
    PubMed Central 

    Google Scholar 

  • OECD. The Economic Consequences of Outdoor Air Pollution (OECD Publishing, 2016).

  • Thurston, G. D. et al. A joint ERS/ATS policy statement: what constitutes an adverse health effect of air pollution? An analytical framework. Eur. Respir. J. 49, 1600419 (2017).

    PubMed 
    PubMed Central 

    Google Scholar 

  • Dominici, F., Peng, R. D., Barr, C. D. & Bell, M. L. Protecting human health from air pollution: shifting from a single-pollutant to a multi-pollutant approach. Epidemiology 21, 187–194 (2010).

    PubMed 
    PubMed Central 

    Google Scholar 

  • Johns, D. O. et al. Practical advancement of multipollutant scientific and risk assessment approaches for ambient air pollution. Environ. Health Perspect. 120, 1238–1242 (2012).

    PubMed 
    PubMed Central 

    Google Scholar 

  • Backhaus, T. & Faust, M. Predictive environmental risk assessment of chemical mixtures: a conceptual framework. Environ. Sci. Technol. 46, 2564–2573 (2012).

    PubMed 
    CAS 

    Google Scholar 

  • Wolff, H. Keep your clunker in the suburb: low-emission zones and adoption of green vehicles. Econ. J. 124, F481–F512 (2014).

    Google Scholar 

  • Nemet, G. F., Holloway, T. & Meier, P. Implications of incorporating air-quality co-benefits into climate change policymaking. Environ. Res. Lett. 5, 014007 (2010).

    Google Scholar 

  • Burtraw, D., Linn, J., Palmer, K. & Paul, A. The costs and consequences of Clean Air Act regulation of CO2 from power plants. Am. Econ. Rev. 104, 557–562 (2014).

    Google Scholar 

  • Morello-Frosch, R. & Shenassa, E. D. The environmental “riskscape” and social inequality: implications for explaining maternal and child health disparities. Environ. Health Perspect. 114, 1150–1153 (2006).

    PubMed 
    PubMed Central 

    Google Scholar 

  • Davalos, A. D., Luben, T. J., Herring, A. H. & Sacks, J. D. Current approaches used in epidemiologic studies to examine short-term multipollutant air pollution exposures. Ann. Epidemiol. 27, 145–153 (2017).

    PubMed 

    Google Scholar 

  • Landrigan, P. J. et al. Environmental medicine: integrating a missing element into medical education. N. Engl. J. Med. 338, 1106–1113 (1998).

    Google Scholar 

  • Anderko, L. et al. Climate change, health, and nursing: a scoping review. Public Health Nurs. 33, 353–365 (2016).

    Google Scholar 

  • Wright, R. et al. A long and winding road: culture change on data sharing in exposomics. Exposome 5, osae004 (2024).

    Google Scholar 

  • Stingone, J. A. et al. Community-level exposomics: a population-centered approach to address public health concerns. Exposome 3, osad009 (2023).

    PubMed 
    PubMed Central 

    Google Scholar 

  • Dong, M. et al. 3-Bromocarbazole-induced developmental neurotoxicity and effect mechanisms in zebrafish. ACS EST Water 3, 2471–2480 (2023).

    CAS 

    Google Scholar 

  • Hill, W. et al. Lung adenocarcinoma promotion by air pollutants. Nature 616, 159–167 (2023).

    PubMed 
    PubMed Central 
    CAS 

    Google Scholar 

  • Gao, P. et al. Human exposure to polycyclic aromatic hydrocarbons: metabolomics perspective. Environ. Int. 119, 466–477 (2018).

    PubMed 
    CAS 

    Google Scholar 

  • Hu, W., Gao, P., Wang, L. & Hu, J. Endocrine disrupting toxicity of aryl organophosphate esters and mode of action. Crit. Rev. Environ. Sci. Technol. 53, 1–18 (2023).

    Google Scholar 

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