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March 3, 2026Particle and Fibre Toxicology1 citationsOpen Access

Associations of prenatal fine particulate matter mixtures with neurodevelopmental outcomes in early childhood: component- and source-specific insights

HLHui LiEHElizabeth A. HolzhausenDPDevendra Paudel

Key Points

  • The aim is to explore how different components of fine particulate matter affect neurodevelopmental outcomes in young children.
  • Analyzed data from 165 mother-infant pairs in Southern California.
  • Estimated annual average concentrations of 15 PM2.5 components during birth year.
  • Assessed neurodevelopment using Bayley-III Scales at age 2.
  • Evaluated mixture effects with weighted quantile sum (WQS) and Bayesian kernel machine regression (BKMR).
  • Conducted source inference through inter-component clustering and spatial analysis.
  • Negative associations between PM2.5 components and adaptive behavior scores were found.
  • Key contributors to these effects included nickel, copper, vanadium, and sulfate.
  • Source analysis indicated that nickel and vanadium likely originate from heavy oil combustion.
  • Copper exposure was linked to brake wear.

Abstract

This study investigates independent and joint effects of fine particulate matter (PM2.5) components on early childhood neurodevelopment and explores emission sources of key toxic components. We included 165 mother-infant dyads from Southern California. Annual average concentrations of 15 PM2.5 components, including carbonaceous components, secondary inorganic salts, and trace elements, were estimated for the birth year. Neurodevelopment across cognitive, language, motor, social-emotional, and adaptive behavior domains was assessed at age 2 using Bayley-III Scales. Mixture effects and key contributors were evaluated using weighted quantile sum (WQS) and Bayesian kernel machine regression (BKMR). Source inference was conducted through inter-component clustering and spatial analysis. Linear regression showed PM2.5, sulfate (SO42−), nitrate (NO3−), ammonium (NH4+), copper (Cu), nickel (Ni), lead (Pb), and vanadium (V) were inversely, while calcium (Ca) and zinc (Zn) were positively, associated with adaptive behavior scores (p < 0.05). WQS showed negative associations between the mixture and adaptive behavior (p = 0.02–0.06), with Ni, Cu, V, and SO₄²⁻ as key contributors. BKMR showed similar trends. Ni, V, and SO42− likely originate from heavy oil combustion, and Cu from brake wear. Findings suggest that PM2.5 components, particularly from traffic and marine fuel combustion, may adversely affect adaptive behavior in early childhood.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69a67eebf353c071a6f0a869https://doi.org/10.1186/s12989-025-00657-2
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Prenatal exposure to PM2.5 specific constituents and child neurodevelopmental delay: The role of maternal metabolites and mediterranean diet2026
  2. 2Gestational Exposure to PM<sub>2.5</sub> and Specific Constituents, Meconium Metabolites, and Neonatal Neurobehavioral Development: A Cohort Study2024 · 3 citations
  3. 3Systematic Review of Prenatal Exposure to PM2.5 and Its Chemical Components and Their Effects on Neurodevelopmental Outcomes in Neonates2025
  4. 4Sources of outdoor air pollution exposure and child brain network development across the United States2025
  5. 5Association of prenatal exposure to PM2.5 and its chemical constituents with early childhood obesity: A population-based study2026