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Author Spotlight: Understanding Adolescent Social Adversity Effects on Neurodevelopment in Mice
Published on: March 15, 2024
Social interaction following prepubertal stress alters prefrontal gene expression associated with cell signalling and
Anna L Moon1, Nicholas E Clifton1,2, Natalie Wellard1
1Neuroscience and Mental Health Research Institute, Cardiff University, Hadyn Ellis Building, Maindy Road, Cardiff, CF24 4HQ, UK.
Insights
Early-life stress impacts adult brain function, particularly social behavior. Prepubertal stress in rats altered gene expression in the prefrontal cortex (PFC) following social interaction, highlighting pathways involved in axon myelination and cell signaling.
Area of Science:
- Neuroscience
- Genomics
- Developmental Psychology
Background:
- Early-life adversity increases psychopathology risk, but mechanisms remain unclear.
- The prepubertal period is critical for prefrontal cortex (PFC) development.
- Understanding stress-induced changes is vital for therapeutic interventions.
Purpose of the Study:
- Investigate genome-wide gene expression changes in the adult rat PFC following early-life stress.
- Identify social activity-dependent gene alterations after prepubertal stress (PPS).
- Explore molecular pathways contributing to psychopathology risk.
Main Methods:
- RNA sequencing of the adult rat PFC after prepubertal stress (PPS) and control conditions.
- Analysis of gene expression changes at baseline and following a social interaction test.
- Pathway enrichment analysis and cell type association (oligodendrocytes).
Main Results:
- No baseline gene expression differences were observed between PPS and control rats.
- 1603 genes were differentially expressed in PPS rats post-social interaction.
- Enriched pathways involved cell signaling and axon myelination, associated with oligodendrocytes.
Conclusions:
- Prepubertal stress leads to differential gene activation in the adult PFC in response to social stimuli.
- Axon myelination and cell signaling pathways are significantly affected.
- These stress-induced molecular changes may underlie vulnerability to psychiatric disorders.
Abstract:
Early-life adversity is associated with an increased risk of psychopathology, including mood disorders, later in life. Early-life stress affects several physiological systems, however, the exact mechanisms underlying pathological risk are not fully understood. This knowledge is crucial in developing appropriate therapeutic interventions. The prepubertal period is documented as a key developmental period for the maturation of the prefrontal cortex (PFC), a brain region involved in higher cognitive functions, including social function. In this study, we performed RNA sequencing on the PFC of adult rats who had experienced prepubertal stress (PPS) and controls to investigate the genome-wide consequences of this stress. PPS alters social behaviour in adulthood, therefore we also performed RNA sequencing on PPS and control rats following a social interaction test to determine social activity-dependent gene changes. At a baseline state (1 week following a social interaction test), no genes were differentially expressed in the PPS group. However, 1603 genes were differentially expressed in PPS rats compared to controls following a social interaction. These genes were enriched in biological pathways associated with cell signalling and axon myelination dynamics. Cell enrichment analysis showed these genes were associated with oligodendrocytes, and a comparison with an existing early-life stress sequencing dataset showed that pathways linked to oligodendrocyte morphology are impacted in a range of models of early-life stress in rodents. In conclusion, we identify pathways, including those involved in axon myelination, that are differentially activated in the adult in response to social stimulation following PPS. These differential responses may contribute to vulnerability to psychiatric pathology.
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