Cardiopulmonary hospitalization risks from wildfire-specific and non-wildfire PM2.5 in 20 US states

Abstract Increasing wildfire activity in the US has made wildfire-specific fine particulate matter (PM 2.5 ) an important and growing source of air pollution, yet its long-term health impacts and relative toxicity compared with non-wildfire PM 2.5 remain unclear. Using a self-controlled design, we examine associations between 2-year average wildfire-specific and non-wildfire PM 2.5 and cardiopulmonary hospitalization risks across 20 US states during 2006–2019. Per 1 µg/m 3 increase, wildfire-specific PM 2.5 is associated with significantly higher hospitalization risks for all cardiopulmonary diseases, with relative risks ranging from 10% for heart failure to 16% for asthma. In contrast, a 1-µg/m 3 increase in non-wildfire PM 2.5 is associated with smaller risk elevations, ranging from 4.7% for chronic obstructive pulmonary disease to 8.5% for hypertension. Stronger associations for both wildfire-specific and non-wildfire PM 2.5 are observed among minorities, metropolitan residents, those with fewer years of education, and more deprived communities. Overall, at an equivalent concentration increase, long-term exposure to wildfire-specific PM 2.5 poses greater cardiopulmonary hospitalization risks than non-wildfire PM 2.5 , underscoring wildfire smoke as a growing public health threat that requires targeted mitigation alongside conventional air quality control strategies.

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Publication Details

Journal
Nature Communications
Published
2026-09-17
DOI
https://doi.org/10.1038/s41467-026-76974-7
Primary Topic
Fire effects on ecosystems
Type
article
Field-Weighted Citation Impact
0.00

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article

Cardiopulmonary hospitalization risks from wildfire-specific and non-wildfire PM2.5 in 20 US states

Robert O. Wright, Mahdieh Danesh Yazdi, Yaguang Wei, Joel Schwartz et al.
Nature Communications
Fire effects on ecosystems
article

Cardiopulmonary hospitalization risks from wildfire-specific and non-wildfire PM2.5 in 20 US states

Robert O. Wright, Mahdieh Danesh Yazdi, Yaguang Wei, Joel Schwartz, Minghao Qiu, Boyuan Li, Min Zhang, Edgar Castro, Rosalind J. Wright
article en

Abstract

Abstract Increasing wildfire activity in the US has made wildfire-specific fine particulate matter (PM 2.5 ) an important and growing source of air pollution, yet its long-term health impacts and relative toxicity compared with non-wildfire PM 2.5 remain unclear. Using a self-controlled design, we examine associations between 2-year average wildfire-specific and non-wildfire PM 2.5 and cardiopulmonary hospitalization risks across 20 US states during 2006–2019. Per 1 µg/m 3 increase, wildfire-specific PM 2.5 is associated with significantly higher hospitalization risks for all cardiopulmonary diseases, with relative risks ranging from 10% for heart failure to 16% for asthma. In contrast, a 1-µg/m 3 increase in non-wildfire PM 2.5 is associated with smaller risk elevations, ranging from 4.7% for chronic obstructive pulmonary disease to 8.5% for hypertension. Stronger associations for both wildfire-specific and non-wildfire PM 2.5 are observed among minorities, metropolitan residents, those with fewer years of education, and more deprived communities. Overall, at an equivalent concentration increase, long-term exposure to wildfire-specific PM 2.5 poses greater cardiopulmonary hospitalization risks than non-wildfire PM 2.5 , underscoring wildfire smoke as a growing public health threat that requires targeted mitigation alongside conventional air quality control strategies.

Nature CommunicationsVol. 17(1)
Harvard University (US), New York University (US), Stony Brook University (US), Icahn School of Medicine at Mount Sinai (US)
Stony Brook University, National Institute of Environmental Health Sciences
Good health and well-being
Openalex Percentile: Top 14%
Fire effects on ecosystems
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