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February 20, 2026Journal of the American College of Cardiology5 citations

Short-Term PM2.5 Exposure and Cardiovascular Mortality

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YYYongkang YangJDJianyu DengPZPeng Zhou

Key Result

Every 10 μg/m3 increase in short-term PM2.5 concentration increased cardiovascular mortality risk (RR 1.0090; 95% CI 1.0074-1.0106), with an optimal public health alert value estimated at 136 μg/m3.

Key Points

  • This study aims to establish a globally representative exposure-response function for short-term PM2.5 and cardiovascular mortality.
  • Conducted a systematic review and meta-analysis of 100 epidemiologic studies with 123 effect estimates up to May 2025.
  • Employed a 3-stage meta-regression model combining spline functions and structural causal modeling.
  • Integrated global data on PM2.5 concentrations, population, and mortality to quantify the cardiovascular mortality burden.
  • For every 10 μg/m3 increase in PM2.5, the pooled risk ratio for cardiovascular mortality was 1.0090 (95% CI: 1.0074-1.0106).
  • Estimated 59,399 cardiovascular deaths attributable to PM2.5 pollution exceeding 75 μg/m3 in 2023 (95% CI: 38,126-82,413).
  • The optimal alert value for PM2.5 was identified as 136 μg/m3 (95% CI: 129-148), potentially preventing 73.2% of attributable deaths.

Study Design

Type

Meta-Analysis

Multicenter

Yes

Structured PICO

Does short-term PM2.5 exposure increase cardiovascular mortality in general populations?

P
Population
General populations from 100 epidemiologic studies (comprising 123 effect estimates) globally
I
Intervention
Short-term exposure to ambient fine particulate matter (PM2.5)
C
Comparator
Lower concentrations of PM2.5
O
Outcome
Cardiovascular mortalityhard clinical

A supralinear exposure-response relationship exists between short-term PM2.5 exposure and cardiovascular mortality, with an optimal alert threshold of 136 μg/m3 identified to maximize health benefits while minimizing societal disruption.

Main Result

Effect estimate: RR 1.0090 (95% CI 1.0074-1.0106)

Abstract

Short-term exposure to ambient fine particulate matter (PM 2.5 ) is an established risk factor for cardiovascular morbidity and mortality. However, existing air pollution alert systems are inefficient in protecting general populations, partly because of a lack of precise understanding of the nonlinear exposure-response relationship between PM 2.5 and cardiovascular mortality. The aim of this study was to construct a globally representative nonlinear exposure-response function for short-term PM 2.5 exposure and cardiovascular mortality through a systematic meta-analysis of published global literature. On the basis of this function, the goal was to identify an optimal public health alert threshold that balances health protection benefits with societal disruption. A systematic review and meta-analysis of 100 epidemiologic studies (comprising 123 effect estimates) up to May 2025 was conducted. An innovative 3-stage meta-regression model, combining spline functions and structural causal modeling theory, was used to estimate the nonlinear curve. On the basis of this curve, and integrated with global gridded data on PM 2.5 concentrations, population, and baseline mortality, the cardiovascular mortality burden attributable to PM 2.5 from 2000 to 2023 was quantified, and a receiver-operating characteristic–like curve analysis was used to determine the optimal alert value. The meta-analysis confirmed that for every 10 μg/m 3 increase in short-term PM 2.5 concentration, the pooled risk ratio for cardiovascular mortality was 1.0090 (95% CI: 1.0074-1.0106). The constructed exposure-response curve exhibited a supralinear pattern: the marginal risk was high at low concentrations, flattened at moderate concentrations (∼75-150 μg/m 3 ), and rose sharply again above 150 μg/m 3 . In 2023, the global number of cardiovascular deaths attributable to PM 2.5 pollution episodes (exceeding the World Health Organization’s first-stage interim target of 75 μg/m 3 ) was estimated at 59,399 (95% CI: 38,126-82,413). The optimal alert value was estimated as 136 μg/m 3 (95% CI: 129-148), which could prevent 73.2% (95% CI: 71.8%-76.6%) of attributable deaths while affecting only 32% of at-risk person-days. A significant nonlinear relationship exists between short-term PM 2.5 exposure and cardiovascular mortality. The optimal alert value identified in this study provides critical evidence for developing more scientific, efficient, and health-oriented air pollution warning systems, thereby maximizing public health benefits while minimizing social disruption.

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Cite This Study

Yang et al. (2026) conducted a meta-analysis in Cardiovascular mortality. Short-term PM2.5 exposure was evaluated on Cardiovascular mortality (RR 1.0090, 95% CI 1.0074-1.0106). Every 10 μg/m3 increase in short-term PM2.5 concentration increased cardiovascular mortality risk (RR 1.0090; 95% CI 1.0074-1.0106), with an optimal public health alert value estimated at 136 μg/m3.

synapsesocial.com/papers/6997b911baf9c852d8c25e3bhttps://doi.org/10.1016/j.jacc.2025.11.055
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