Importance: Epigenetic age acceleration (EAA) has been linked to increased disease risk in adults, yet its developmental trajectories and early-life neighborhood determinants remain poorly understood. Objective: To examine associations between the neighborhood exposome at birth and EAA trajectories from early childhood through adolescence. Design, Setting, and Participants: Longitudinal cohort study using data from Project Viva, a pre-birth cohort that enrolled pregnant women in eastern Massachusetts (1999-2002). Participants included 570 children with available peripheral blood DNA methylation data, complete neighborhood characteristics, and complete covariates. Data were analyzed from 2024 to 2026. Exposures: Neighborhood exposome profiles at birth derived from 22 census tract-level characteristics across four domains (area deprivation, social fragmentation, population density, and environmental quality) using self-organizing maps. Main Outcomes and Measures: EAA was calculated at ages 3 (n=84), 8 (n=301), and 13 (n=434) years using Horvath, Skin & Blood, and Wu epigenetic clocks. Trajectories were identified using latent class linear mixed models. Associations between neighborhood profiles and EAA trajectories were estimated using multinomial mixed models. Results: Among 570 children (mean [SD] age at early childhood, 3.2 [0.4] years; 265 [46.5%] female), three EAA trajectory groups (stable, increasing, and decreasing for the Horvath and Skin & Blood clocks or low-baseline for the Wu clock) and three neighborhood profiles were identified. Compared with Profile 1 (suburban, lowest adverse exposures; n=278), children born into Profile 2 (urban, high residential instability and single-person households, and highway proximity; n=168) had greater odds of increasing EAA for Wu clock (aOR, 1.67; 95% CI, 1.03-2.69). Profile 3 (urban, high socioeconomic deprivation; n=124) showed no significant associations. Conclusions and Relevance: In this longitudinal cohort study, birth into neighborhoods characterized by high residential instability and single- person households, and highway proximity was associated with increasing Wu EAA trajectories across childhood. These findings suggest that early-life neighborhood conditions, encompassing both social and physical environmental factors, may represent targets for interventions aimed at reducing long-term disease risk. Further research is needed to clarify the implications of these findings for later health and prevention.
Q. Yuan, A. Bozack, V. Paquin et al.· medRxiv· 0 citations
The Developmental Origins of Health and Disease (DOHaD) hypothesis proposes that the perinatal environment shapes susceptibility to complex traits across life [1]. The placenta, a transient organ mediating maternal-fetal exchange, plays a central role in this process and has emerged as a key molecular archive in utero [2-4]. Placental DNA methylation (DNAm) is a unique mediator between prenatal exposures, fetal genetics and later-life outcomes [5-9]. DNAm quantitative trait loci (mQTL) have helped disentangling causal mechanisms underlying GWAS loci for complex diseases [10-15]. Despite growing evidence that placental genomic regulation has broad and profound effects on the developmental programming of early- and later-life health outcomes [17], existing placental studies remain limited in scale and largely focused on growth- and neuro-related traits [12-16]. Here, we construct a high-resolution placental mQTL resource and systematically investigate how placental DNAm relates to early- and later-life traits, and to shared vulnerability and complex interactions among them.
A. Cilleros-Portet, Itziar González-Moro, Hachem Sadikki et al.· medRxiv· 0 citations