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Consequences of excessive plasticity in the hippocampus induced by perinatal asphyxia
G E Saraceno1, L G Caceres2, L R Guelman2
1ININCA, Universidad de Buenos Aires (UBA)-CONICET, Buenos Aires, Argentina.
Insights
Perinatal asphyxia (PA) may disrupt neural circuit development, leading to neurodevelopmental disorders (NDDs). This study shows PA causes abnormal synaptogenesis, potentially underlying NDDs and behavioral deficits.
Area of Science:
- Neuroscience
- Developmental Biology
- Pathophysiology
Background:
- Perinatal asphyxia (PA) is a significant risk factor for neurodevelopmental disorders (NDDs).
- Neuronal connectivity dysfunction is a key factor in NDD pathophysiology.
- Early-life brain plasticity alterations may contribute to NDDs.
Purpose of the Study:
- To investigate the impact of perinatal asphyxia on hippocampal neural circuit development in a murine model.
- To explore the role of disturbed brain plasticity and synaptogenesis in PA-induced neurodevelopmental changes.
Main Methods:
- Utilized a murine model of perinatal asphyxia.
- Conducted histological analyses (NeuN, MAP-2, NF-M/Hp) and electron microscopy of dendritic spines.
- Performed Western blot, RT-qPCR, and behavioral tests (open field test).
Main Results:
- Observed abnormal neuron staining and increased dendritic spine density post-asphyxia.
- Found elevated β-actin mRNA and protein levels, alongside increased M6a expression.
- Detected activation of the PI3K/Akt/GSK3 signaling pathway involved in synaptogenesis.
- Asphyctic animals exhibited altered habituation memory.
Conclusions:
- Perinatal asphyxia induces abnormal synaptogenesis due to excessive brain plasticity during development.
- Altered synaptic maturation following PA may contribute to the etiology of NDDs and associated behavioral deficits.
Abstract:
Perinatal asphyxia (PA) is one of the most frequent risk factors for several neurodevelopmental disorders (NDDs) of presumed multifactorial etiology. Dysfunction of neuronal connectivity is thought to play a central role in the pathophysiology of NDDs. Because underlying causes of some NDDs begin before/during birth, we asked whether this clinical condition might affect accurate establishment of neural circuits in the hippocampus as a consequence of disturbed brain plasticity. We used a murine model that mimics the pathophysiological processes of perinatal asphyxia. Histological analyses of neurons (NeuN), dendrites (MAP-2), neurofilaments (NF-M/Hp) and correlative electron microscopy studies of dendritic spines were performed in Stratum radiatum of the hippocampal CA1 area after postnatal ontogenesis. Protein and mRNA analyses were achieved by Western blot and RT-qPCR. Behavioral tests were also carried out. NeuN abnormal staining and spine density were increased. RT-qPCR assays revealed a β-actin mRNA over-expression, while Western blot analysis showed higher β-actin protein levels in synaptosomal fractions in experimental group. M6a expression, protein involved in filopodium formation and synaptogenesis, was also increased. Furthermore, we found that PI3K/Akt/GSK3 pathway signaling, which is involved in synaptogenesis, was activated. Moreover, asphyctic animals showed habituation memory changes in the open field test. Our results suggest that abnormal synaptogenesis induced by PA as a consequence of excessive brain plasticity during brain development may contribute to the etiology of the NDDs. Consequences of this altered synaptic maturation can underlie some of the later behavioral deficits observed in NDDs.
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