» Articles » PMID: 27448387

Epigenome-Wide Meta-Analysis of Methylation in Children Related to Prenatal NO2 Air Pollution Exposure

Abstract

Background: Prenatal exposure to air pollution is considered to be associated with adverse effects on child health. This may partly be mediated by mechanisms related to DNA methylation.

Objectives: We investigated associations between exposure to air pollution, using nitrogen dioxide (NO2) as marker, and epigenome-wide cord blood DNA methylation.

Methods: We meta-analyzed the associations between NO2 exposure at residential addresses during pregnancy and cord blood DNA methylation (Illumina 450K) in four European and North American studies (n = 1,508) with subsequent look-up analyses in children ages 4 (n = 733) and 8 (n = 786) years. Additionally, we applied a literature-based candidate approach for antioxidant and anti-inflammatory genes. To assess influence of exposure at the transcriptomics level, we related mRNA expression in blood cells to NO2 exposure in 4- (n = 111) and 16-year-olds (n = 239).

Results: We found epigenome-wide significant associations [false discovery rate (FDR) p < 0.05] between maternal NO2 exposure during pregnancy and DNA methylation in newborns for 3 CpG sites in mitochondria-related genes: cg12283362 (LONP1), cg24172570 (3.8 kbp upstream of HIBADH), and cg08973675 (SLC25A28). The associations with cg08973675 methylation were also significant in the older children. Further analysis of antioxidant and anti-inflammatory genes revealed differentially methylated CpGs in CAT and TPO in newborns (FDR p < 0.05). NO2 exposure at the time of biosampling in childhood had a significant impact on CAT and TPO expression.

Conclusions: NO2 exposure during pregnancy was associated with differential offspring DNA methylation in mitochondria-related genes. Exposure to NO2 was also linked to differential methylation as well as expression of genes involved in antioxidant defense pathways. Citation: Gruzieva O, Xu CJ, Breton CV, Annesi-Maesano I, Antó JM, Auffray C, Ballereau S, Bellander T, Bousquet J, Bustamante M, Charles MA, de Kluizenaar Y, den Dekker HT, Duijts L, Felix JF, Gehring U, Guxens M, Jaddoe VV, Jankipersadsing SA, Merid SK, Kere J, Kumar A, Lemonnier N, Lepeule J, Nystad W, Page CM, Panasevich S, Postma D, Slama R, Sunyer J, Söderhäll C, Yao J, London SJ, Pershagen G, Koppelman GH, Melén E. 2017. Epigenome-wide meta-analysis of methylation in children related to prenatal NO2 air pollution exposure. Environ Health Perspect 125:104-110; http://dx.doi.org/10.1289/EHP36.

Citing Articles

Ambient Air Pollution and Congenital Heart Disease: Updated Evidence and Future Challenges.

Gorini F, Tonacci A Antioxidants (Basel). 2025; 14(1).

PMID: 39857382 PMC: 11761577. DOI: 10.3390/antiox14010048.


Impact of COVID-19, lockdowns and vaccination on immune responses in a HIV cohort in the Netherlands.

Otten T, Jiang X, Gupta M, Vadaq N, Cleophas-Jacobs M, Dos Santos J Front Immunol. 2025; 15:1459593.

PMID: 39744634 PMC: 11688194. DOI: 10.3389/fimmu.2024.1459593.


Air pollution exposure is associated with gene expression in children.

Das S, Rundblad A, Marques I, Goncalves Soares A, Jaddoe V, Vrijheid M Environ Epigenet. 2024; 10(1):dvae025.

PMID: 39723337 PMC: 11668970. DOI: 10.1093/eep/dvae025.


Long-term effects of air pollution on daily outpatient visits for allergic conjunctivitis from 2013 to 2020: a time-series study in Urumqi, China.

Liu D, Gui S, Wang X, Wang Q, Qiao J, Tao F Front Public Health. 2024; 12:1325956.

PMID: 39525469 PMC: 11543485. DOI: 10.3389/fpubh.2024.1325956.


From womb to wellness: early environmental exposures, cord blood DNA methylation and disease origins.

Mirzakhani H Epigenomics. 2024; 16(17):1175-1183.

PMID: 39263926 PMC: 11457657. DOI: 10.1080/17501911.2024.2390823.


References
1.
Calderon-Garciduenas L, Torres-Jardon R, Kulesza R, Park S, DAngiulli A . Air pollution and detrimental effects on children's brain. The need for a multidisciplinary approach to the issue complexity and challenges. Front Hum Neurosci. 2014; 8:613. PMC: 4129915. DOI: 10.3389/fnhum.2014.00613. View

2.
Chen Z, Salam M, Eckel S, Breton C, Gilliland F . Chronic effects of air pollution on respiratory health in Southern California children: findings from the Southern California Children's Health Study. J Thorac Dis. 2015; 7(1):46-58. PMC: 4311073. DOI: 10.3978/j.issn.2072-1439.2014.12.20. View

3.
Rossner Jr P, Tulupova E, Rossnerova A, Libalova H, Honkova K, Gmuender H . Reduced gene expression levels after chronic exposure to high concentrations of air pollutants. Mutat Res. 2015; 780:60-70. DOI: 10.1016/j.mrfmmm.2015.08.001. View

4.
Rossnerova A, Tulupova E, Tabashidze N, Schmuczerova J, Dostal M, Rossner Jr P . Factors affecting the 27K DNA methylation pattern in asthmatic and healthy children from locations with various environments. Mutat Res. 2013; 741-742:18-26. DOI: 10.1016/j.mrfmmm.2013.02.003. View

5.
Touleimat N, Tost J . Complete pipeline for Infinium(®) Human Methylation 450K BeadChip data processing using subset quantile normalization for accurate DNA methylation estimation. Epigenomics. 2012; 4(3):325-41. DOI: 10.2217/epi.12.21. View