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Biology subjects

Hisey, E. E.

Publications and source records attributed to Hisey, E. E..

2 recordsLinked to original sources

A critical role for the murine anterior insula in male social avoidance after early life maltreatment.

Maltreatment in children and adolescents poses a major public health crisis as a primary factor for the development of adult psychiatric disorders. However effective treatments for symptoms resulting from early life maltreatment are lacking, in part due to a lack of understanding of how neural circuits are disrupted in adulthood after childhood and adolescent abuse. We used a novel model of developmental maltreatment (early adolescent chronic social defeat stress, eaCSDS) in C57/B6J mice to examine behavioral and circuit-level effects in the adult anterior insula (AI). We combined chemogenetics, whole brain c-fos imaging and multi-site LFP to investigate the role of the AI and related circuitry in adult behavioral dysfunction after early life maltreatment. Behavioral analysis in adult animals reveals that males, but not females, show robust generalized social avoidance after social defeat in early adolescence. Chemogenetic silencing of AI neurons in males, but not females, reduces social avoidance in adulthood after eaCSDS. In males, whole brain c-fos imaging and multi-site LFP recordings further reveal circuit-level disruptions in connectivity to AI, implicating AI dysregulation as a driver of adult male social avoidance after adolescent maltreatment. Together these findings reveal AI as a novel circuits-level target whose activity normalization may reduce fear-based symptoms of adolescent maltreatment in adulthood specifically in males.

neuroscience↗

Correspondence between sleep patterns and anhedonia in adult male mice exposed to early-life stress

Early-life stress (ELS) can produce long-lasting effects that increase the risk for mood and anxiety disorders. Transdiagnostic symptoms include anhedonia (reduced reward sensitivity) and sleep disruption, both of which are quantifiable via objective endpoints that can be utilized across species. Here we used a mouse model for ELS--exposure to juvenile chronic social defeat stress (jCSDS)--together with translationally-applicable endpoints to examine correspondence between sleep patterns and anhedonia. These initial studies focused on males, which typically show robust defeat-induced anhedonia phenotypes. Exposure to jCSDS produced reductions in open-field social behavior, an endpoint commonly used in mice to quantify stress effects, during adulthood. Mice were then implanted with wireless transmitters that enable continuous EEG-derived analysis of sleep architecture. Following assessment of baseline sleep patterns, mice were tested in a rodent version of the Probabilistic Reward Task (PRT), a procedure used to quantify reward responsiveness in humans, during the light phase of their diurnal cycle. These studies revealed significant associations between baseline sleep architecture and anhedonic phenotypes in jCSDS-exposed mice: higher anhedonia correlated with less time awake and more time in slow wave sleep (SWS) during the light phase, and more time awake and less time in rapid eye movement (REM) sleep and SWS during the dark (active) phase. Our findings suggest that sleep patterns represent a biomarker that can predict stress-susceptible (higher anhedonia) and resilient (lower anhedonia) phenotypes. This work enhances our understanding of relationships between sleep and anhedonia, and may provide a basis for precision approaches to treat ELS-induced pathophysiology.

animal behavior and cognition↗