Authors
Timothy D Nelin, Nicolas P Goldstein Novick, Joshua K Radack, Rachel F Ledyard, Allan C Just, Sara B DeMauro, Kristin A Scott, Aimin Chen, Scott A Lorch, Heather H Burris
Published in
Annals of epidemiology. Pages 110291. Sep 17, 2026. Epub Sep 17, 2026.
Abstract
Spontaneous preterm birth (sPTB) is a leading cause of neonatal morbidity in the United States. Genetics incompletely explains sPTB risk and environmental contributions remain poorly understood. We analyzed associations of short-term fine particulate matter (PM2.5) exposure with sPTB in two datasets: 109,735 sPTBs in Michigan (2003-2020) and 5,321 sPTBs in metropolitan Philadelphia (2008-2020). We used a time-stratified case-crossover design and daily high-resolution PM2.5 estimates to evaluate exposures in the week prior to sPTB using three complementary approaches: (1) nested daily lag terms; (2) averaged lag exposures; and (3) distributed lag non-linear models (DLNMs). To assess whether allowing flexible lag structures improved model fit, we performed likelihood ratio tests comparing models with linear lag terms to DLNMs. All models were adjusted for temperature. Across both cohorts and modeling approaches, we did not detect statistically significant associations of short-term PM2.5 exposure with sPTB, with point estimates close to the null with narrow confidence intervals. These findings suggest that, at the studied concentrations, short-term elevations in PM2.5 are unlikely to be associated with sPTB. As environmental regulatory protections evolve, pollution levels may change, underscoring the importance of continued surveillance of PM2.5-related health effects.
PMID:
42754186
Bibliographic data and abstract were imported from PubMed on 18 Sep 2026.
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