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Published on: November 20, 2015
Preeclamptic placentae release factors that damage neurons: implications for foetal programming of disease
Hannah Scott1,2, Tom J Phillips1,2, Greer C Stuart3
1School of Clinical Sciences, University of Bristol, Learning & Research Building, Southmead Hospital, Bristol BS10 5NB, U.K.
Insights
Preeclampsia-affected placentas release factors that alter fetal brain cell development, increasing risks for schizophrenia and autism. Antioxidant treatment may prevent these neurodevelopmental issues.
Area of Science:
- Neuroscience
- Developmental Biology
- Obstetrics
Background:
- Prenatal development is crucial for brain programming, with complications like preeclampsia posing risks.
- Preeclampsia, characterized by placental oxidative stress, is linked to increased childhood neurodevelopmental disorders, including autism spectrum disorder and schizophrenia.
Purpose of the Study:
- To investigate if molecules secreted by preeclamptic placentae mediate fetal brain programming.
- To determine if placental factors influence cortical cell development and contribute to neurodevelopmental risks.
Main Methods:
- Analyzing conditioned medium from preeclamptic placentae applied to mixed cortical cell cultures.
- Assessing neuronal and astrocyte changes, including dendrite length, cell numbers, and neurotransmitter receptor levels.
- Investigating the role of placental extracellular microRNAs and the effect of antioxidant treatment.
Main Results:
- Preeclamptic placental medium altered cortical neurons and astrocytes, mimicking changes seen in schizophrenia and autism.
- Antioxidant treatment of placental explants prevented neuronal abnormalities.
- Extracellular microRNA profiles were altered in preeclampsia, with partial rescue by antioxidants, and targets linked to neurodevelopment.
Conclusions:
- Diseased placentas can release factors damaging to developing cortical cells.
- Bidirectional neuron-astrocyte communication, possibly via glutamate, is essential for these effects.
- Targeted placental antioxidant therapy may offer a strategy to prevent neurodevelopmental disorders.
Abstract:
Prenatal development is a critical period for programming of neurological disease. Preeclampsia, a pregnancy complication involving oxidative stress in the placenta, has been associated with long-term health implications for the child, including an increased risk of developing schizophrenia and autism spectrum disorders in later life. To investigate if molecules released by the placenta may be important mediators in foetal programming of the brain, we analysed if placental tissue delivered from patients with preeclampsia secreted molecules that could affect cortical cells in culture. Application of culture medium conditioned by preeclamptic placentae to mixed cortical cultures caused changes in neurons and astrocytes that were related to key changes observed in brains of patients with schizophrenia and autism, including effects on dendrite lengths, astrocyte number as well as on levels of glutamate and γ-aminobutyric acid receptors. Treatment of the placental explants with an antioxidant prevented neuronal abnormalities. Furthermore, we identified that bidirectional communication between neurons and astrocytes, potentially via glutamate, is required to produce the effects of preeclamptic placenta medium on cortical cells. Analysis of possible signalling molecules in the placenta-conditioned medium showed that the secretion profile of extracellular microRNAs, small post-transcriptional regulators, was altered in preeclampsia and partially rescued by antioxidant treatment of the placental explants. Predicted targets of these differentially abundant microRNAs were linked to neurodevelopment and the placenta. The present study provides further evidence that the diseased placenta may release factors that damage cortical cells and suggests the possibility of targeted antioxidant treatment of the placenta to prevent neurodevelopmental disorders.
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