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April 1, 2026Environmental Research0 citationsOpen Access

Mortality impacts of air pollution and greenness: real-world and counterfactual exposure scenarios in seven Northern European cities

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SXShanshan XuAMAlessandro R MarconRBRandi Jacobsen Bertelsen

Key Points

  • To assess the long-term impacts of air pollution and greenness on all-cause mortality in Northern European cities.
  • Conducted health impact assessment using cohort data from 16,404 adults.
  • Estimated annual exposures for PM 2.5, PM 10, NO 2, and NDVI from 1990-2010.
  • Linked exposure changes to all-cause mortality using exposure-response functions.
  • Estimated population attributable fractions for observed and counterfactual scenarios.
  • Significant reductions in exposure: average decrease of 3.0 μg/m3 for PM 2.5, 4.4 μg/m3 for PM 10, and 2.3 μg/m3 for NO 2.
  • NDVI increased by 0.11, contributing to lesser mortality risks.
  • Estimates indicated a total PAF of 2.15% for PM 2.5, 2.53% for PM 10, and 0.46% for NO 2.
  • Aligning with WHO AQGs and increasing greenness could prevent more deaths, with projected PAFs reaching up to 6.44%.

Abstract

Air pollution and greenness are important determinants of population health. Understanding their long-term impacts can inform integrated urban and environmental policies to reduce mortality and improve health. To quantify both the real-world and potential impacts of two decades of changes in air pollution and greenness on all-cause mortality among adults aged 18-65 years in seven Northern European cities. We conducted a health impact assessment using cohort-derived exposure distributions from 16,404 adults in the Respiratory Health in Northern Europe (RHINE) study. Annual exposures to particulate matter (PM 2.5 , PM 10 ), nitrogen dioxide (NO 2 ), and greenness (Normalized Difference Vegetation Index, NDVI) were estimated at residential addresses for 1990–2010. Exposure changes were linked to all-cause mortality using established exposure–response functions to estimate population attributable fractions (PAFs). Additional analyses estimated potential health benefits under the 2021 WHO Air Quality Guidelines (AQGs) and enhanced greenness scenarios. Between 1990 and 2010, exposures decreased on average by 3.0 μg/m 3 for PM 2.5 , 4.4 μg/m 3 for PM 10 , and 2.3 μg/m 3 for NO 2 , while NDVI increased by 0.11. These changes corresponded to estimated PAF of 2.15% (95% CI: 1.83%–2.47%) for PM 2.5 , 2.53% (95% CI: 2.35%–2.72%) for PM 10 , 0.46% (95% CI: 0.41%–0.51%) for NO 2 , and 2.07% (95% CI: 1.88%–2.25%) for NDVI, representing the proportion of premature deaths prevented or delayed. Under counterfactual scenarios, alignment with the WHO AQGs would correspond to PAFs of 3.01% (95% CI: 2.58%–3.42%) for PM 2.5 , 1.56% (95% CI: 1.43%–1.69%) for PM 10 , and 1.59% (95% CI: 1.41%–1.77%) for NO 2 , while increasing greenness to the 75 th percentile would correspond to 6.44% (95% CI: 5.74%–7.16%). Real-world environmental improvements were estimated to prevent or delay a measurable proportion of all-cause deaths among working-age adults. Larger benefits could be achieved under more ambitious air quality and urban greening targets. These findings support integrated environmental policies to enhance public health. • Observed air pollution declines and greenness gains (1990–2010) in Northern Europe • Individual exposure trajectories (1990–2010) estimated from modeled data • Reduced air pollution and higher greenness lowered mortality • Meeting WHO 2021 air-quality goals could avert additional deaths • Integrating air-quality and greening policies can enhance public health

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/69cd79e15652765b073a6c1bhttps://doi.org/10.1016/j.envres.2026.124386
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