Neonatal intensive care admissions and exposure to satellite-derived air pollutants in the United States, 2018

Sci Rep. 2025 Jan 2;15(1):420. doi: 10.1038/s41598-024-84755-9.

Abstract

In the United States (US), neonatal intensive care units (NICUs) monitor and treat newborns for a variety of adverse health concerns including preterm status, respiratory distress and restricted growth. As such, NICU admission is an integrated measure of neonatal risk. We linked 2018 US national birth registry NICU admission data among singleton births with satellite and modelled air pollution levels for the month prior to birth to examine whether late-pregnancy exposure to ambient air pollutants is associated with adverse neonatal health outcomes. Regardless of season, higher ambient levels of nitrogen dioxide (NO2) and fine particulate matter < 2.5 microns (PM2.5) increased the likelihood of NICU admission 30-35% for NO2 and 11-22% for PM2.5 even after adjustment for parental characteristics. Results for ozone exposure were inconsistent with largely null or reduced risk except for summer months. Despite the relatively low-moderate US exposure levels, traffic-related pollutants near the end of pregnancy appear to increase overall adverse health risks for newborns, underscoring the need to reduce prenatal exposure to ambient pollutants.

MeSH terms

  • Adult
  • Air Pollutants* / adverse effects
  • Air Pollutants* / analysis
  • Air Pollution* / adverse effects
  • Air Pollution* / analysis
  • Environmental Exposure / adverse effects
  • Female
  • Humans
  • Infant, Newborn
  • Intensive Care Units, Neonatal / statistics & numerical data
  • Intensive Care, Neonatal
  • Male
  • Maternal Exposure / adverse effects
  • Nitrogen Dioxide* / adverse effects
  • Nitrogen Dioxide* / analysis
  • Ozone / adverse effects
  • Ozone / analysis
  • Particulate Matter* / adverse effects
  • Particulate Matter* / analysis
  • Pregnancy
  • Seasons
  • United States

Substances

  • Air Pollutants
  • Nitrogen Dioxide
  • Particulate Matter
  • Ozone