Prenatal Stress Induces Translational Disruption Associated with Myelination Deficits
Gabrielle K Crombie1,2, Hannah K Palliser1,2, Julia C Shaw1,2
1Mothers and Babies Research Centre, Hunter Medical Research Institute, Newcastle, New South Wales, Australia.
Insights
Prenatal stress disrupts fetal brain development, impairing myelin production and potentially leading to long-term behavioral disorders. Placental neurosteroid enzyme expression may identify at-risk fetuses.
Area of Science:
- Neuroscience
- Developmental Biology
- Reproductive Biology
Background:
- Neurodevelopmental disruptions are linked to childhood behavioral disorders.
- The fetal brain is vulnerable to stimuli affecting GABAergic pathways and myelination.
- GABAergic system maturation and oligodendrocyte development are crucial for neurodevelopment.
Purpose of the Study:
- Investigate prenatal stress mechanisms disrupting neurodevelopment.
- Examine the role of placental pathways in adverse prenatal stress outcomes.
- Delineate the impact of prenatal stress on fetal myelination and neurosteroid levels.
Main Methods:
- Pregnant guinea pigs exposed to prenatal stress (strobe light).
- Fetal and placental tissues collected at various gestational ages.
- Quantification of allopregnanolone and cortisol via ELISA.
- Real-time PCR for gene expression analysis in placental and hippocampal tissue.
- Immunohistochemistry for myelin basic protein (MBP) assessment.
Main Results:
- Prenatal stress disrupted myelin production machinery and reduced myelin coverage in the hippocampus.
- Male placentae showed an initial protective increase in allopregnanolone.
- Placentae exhibited sex-dependent increases in neurosteroidogenic enzymes at term.
- Female fetuses' placentae enhanced cortisol transfer prevention at gestational day 60.
- Myelination deficits identified in fetal life, persisting into childhood.
Conclusions:
- Prenatal stress negatively impacts fetal myelination, with deficits beginning in utero.
- Dysregulation of myelin basic protein translation may contribute to persistent neurodevelopmental issues.
- Placental neurosteroidogenic enzyme expression patterns can identify fetuses at risk from in utero stress.
Abstract:
Disruptions to neurodevelopment are known to be linked to behavioral disorders in childhood and into adulthood. The fetal brain is extremely vulnerable to stimuli that alter inhibitory GABAergic pathways and critical myelination processes, programing long-term neurobehavioral disruption. The maturation of the GABAergic system into the major inhibitory pathway in the brain and the development of oligodendrocytes into mature cells capable of producing myelin are integral components of optimal neurodevelopment. The current study aimed to elucidate prenatal stress-induced mechanisms that disrupt these processes and to delineate the role of placental pathways in these adverse outcomes. Pregnant guinea pig dams were exposed to prenatal stress with strobe light exposure for 2 h/day on gestational age (GA) 35, 40, 45, 50, 55, 60, and 65, and groups of fetuses and placentae were collected after the stress exposure on GA40, GA50, GA60, and GA69 (term). Fetal plasma, placental, and brain tissue were collected for allopregnanolone and cortisol quantification with ELISA. Relative mRNA expression of genes of specific pathways of interest was examined with real-time PCR in placental and hippocampal tissue, and myelin basic protein (MBP) was quantified immunohistochemically in the hippocampus and surrounding regions for assessment of mature myelin. Prenatal stress in mid-late gestation resulted in disruptions to the translational machinery responsible for the production of myelin and decreased myelin coverage in the hippocampus and surrounding regions. The male placenta showed an initial protective increase in allopregnanolone concentrations in response to maternal psychosocial stress. The male and female placentae had a sex-dependent increase in neurosteroidogenic enzymes at term following prenatal stress. Independent from exposure to prenatal stress, at gestational day 60 - a critical period for myelin development, the placentae of female fetuses had increased capability of preventing cortisol transfer to the fetus through expression of 11-beta-hydroxysteroid dehydrogenase types 1 and 2. The deficits early in the process of maturation of myelination indicate that the reduced myelination observed at childhood equivalence in previous studies begins in fetal life. This negative programing persists into childhood, potentially due to dysregulation of MBP translation processes. Expression patterns of neurosteroidogenic enzymes in the placenta at term following stress may identify at-risk fetuses that have been exposed to a stressful in utero environment.
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