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Published on: July 12, 2012
Analysis of Pregnancy Complications and Epigenetic Gestational Age of Newborns
Christine Ladd-Acosta1, Elizabeth Vang2, Emily S Barrett3
1Department of Epidemiology, Johns Hopkins Bloomberg School of Public Health, Baltimore, Maryland.
Insights
Preeclampsia and gestational diabetes exposure in pregnancy were linked to delayed biological aging in newborns. This effect was more pronounced in female infants, suggesting sex-specific impacts of these common pregnancy complications.
Area of Science:
- Perinatal epidemiology
- Epigenetics
- Developmental biology
Background:
- Preeclampsia, gestational hypertension, and gestational diabetes are leading causes of maternal and child morbidity and mortality.
- The biological mechanisms linking pregnancy complications to adverse child outcomes are not fully understood.
- Altered biological aging in the fetus is an emerging area of interest for understanding these links.
Purpose of the Study:
- To investigate the association between exposure to gestational diabetes, gestational hypertension, and preeclampsia during pregnancy and the biological gestational age of children at birth.
- To determine if these pregnancy complications accelerate or decelerate fetal biological aging.
Main Methods:
- The study analyzed data from 1801 children in the Environmental Influences on Child Health Outcomes (ECHO) cohort study, born between 1998 and 2018.
- Maternal pregnancy complication data were collected via self-report and medical records.
- Offspring DNA methylation was measured from blood samples at birth to estimate biological gestational age using epigenetic clocks.
Main Results:
- Exposure to gestational diabetes and preeclampsia were associated with decelerated epigenetic aging in neonates.
- Gestational hypertension was not significantly associated with changes in epigenetic aging.
- The association between preeclampsia or gestational diabetes and decelerated aging was stronger in female infants compared to male infants.
Conclusions:
- Prenatal exposure to preeclampsia and gestational diabetes appears to delay biological maturity in newborns.
- These findings highlight a potential sex-specific effect, with female infants showing a more pronounced delay in biological aging.
- Further research is needed to elucidate the long-term implications of this altered biological aging for child health outcomes.
Importance:
Preeclampsia, gestational hypertension, and gestational diabetes, the most common pregnancy complications, are associated with substantial morbidity and mortality in mothers and children. Little is known about the biological processes that link the occurrence of these pregnancy complications with adverse child outcomes; altered biological aging of the growing fetus up to birth is one molecular pathway of increasing interest.
Objective:
To evaluate whether exposure to each of these 3 pregnancy complications (gestational diabetes, gestational hypertension, and preeclampsia) is associated with accelerated or decelerated gestational biological age in children at birth.
Design, Setting, And Participants:
Children included in these analyses were born between 1998 and 2018 and spanned multiple geographic areas of the US. Pregnancy complication information was obtained from maternal self-report and/or medical record data. DNA methylation measures were obtained from blood biospecimens collected from offspring at birth. The study used data from the national Environmental Influences on Child Health Outcomes (ECHO) multisite cohort study collected and recorded as of the August 31, 2021, data lock date. Data analysis was performed from September 2021 to December 2022.
Exposures:
Three pregnancy conditions were examined: gestational hypertension, preeclampsia, and gestational diabetes.
Main Outcomes And Measures:
Accelerated or decelerated biological gestational age at birth, estimated using existing epigenetic gestational age clock algorithms.
Results:
A total of 1801 child participants (880 male [48.9%]; median [range] chronological gestational age at birth, 39 [30-43] weeks) from 12 ECHO cohorts met the analytic inclusion criteria. Reported races included Asian (49 participants [2.7%]), Black (390 participants [21.7%]), White (1026 participants [57.0%]), and other races (92 participants [5.1%]) (ie, American Indian or Alaska Native, Native Hawaiian or other Pacific Islander, multiple races, and other race not specified). In total, 524 participants (29.0%) reported Hispanic ethnicity. Maternal ages ranged from 16 to 45 years of age with a median of 29 in the analytic sample. A range of maternal education levels, from less than high school (260 participants [14.4%]) to Bachelor's degree and above (629 participants [34.9%]), were reported. In adjusted regression models, prenatal exposure to maternal gestational diabetes (β, -0.423; 95% CI, -0.709 to -0.138) and preeclampsia (β, -0.513; 95% CI, -0.857 to -0.170), but not gestational hypertension (β, 0.003; 95% CI, -0.338 to 0.344), were associated with decelerated epigenetic aging among exposed neonates vs those who were unexposed. Modification of these associations, by sex, was observed with exposure to preeclampsia (β, -0.700; 95% CI, -1.189 to -0.210) and gestational diabetes (β, -0.636; 95% CI, -1.070 to -0.200), with associations observed among female but not male participants.
Conclusions And Relevance:
This US cohort study of neonate biological changes related to exposure to maternal pregnancy conditions found evidence that preeclampsia and gestational diabetes delay biological maturity, especially in female offspring.
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