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Burek, D. J.

Publications and source records attributed to Burek, D. J..

3 recordsLinked to original sources

Stress-induced adaptations in nucleus accumbens dopamine D1 receptor-expressing cells correspond to social avoidance behavior in male mice

Stress can cause or exacerbate psychiatric illness, and effects on the transcription factor CREB within the nucleus accumbens (NAc) are critically involved. In rodents, stress-induced activation of NAc CREB produces elevations in dynorphin (DYN), an endogenous opioid expressed in dopamine D1-receptor (D1R)-expressing medium spiny neurons (MSNs). In turn, elevated DYN signaling produces features of mood and anxiety disorders via actions at kappa-opioid receptors (KORs). Although individual differences in stress sensitivity have been described--with some appearing susceptible and others resilient--the contribution of NAc DYN to these phenotypes is unclear. Here we examined relationships between social behavior and DYN in D1R-expressing MSNs in mice exposed to chronic social defeat stress (CSDS). We used quantitative (q)RNAscope to assess co-expression of genes encoding CREB (Creb1), D1Rs (Drd1), and DYN (Pdyn) within the NAc. To leverage individual variability, we performed regression analyses across all mice, revealing negative correlations between social interaction behavior and expression of Drd1 and Pdyn, linking higher social avoidance with higher expression of these genes. There was no correlation with Creb1, suggesting stress-induced elevations in Pdyn depend on CREB activation (phosphorylation). These findings suggest that stress-induced elevations in D1R-associated DYN signaling within the NAc is a biomarker of susceptibility.

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↗

Inflammatory pain in mice induces light cycle-dependent effects on sleep architecture

As a syndrome, chronic pain comprises physical, emotional, and cognitive symptoms such as disability, negative affect, feelings of stress, and fatigue. A rodent model of long-term inflammatory pain, induced by complete Freunds adjuvant (CFA) injection, has previously been shown to cause anhedonia and dysregulated naturalistic behaviors, in a manner similar to animal models of stress. We examined whether this extended to alterations in circadian rhythms and sleep, such as those induced by chronic social defeat stress, using actigraphy and wireless EEG. CFA-induced inflammatory pain profoundly altered sleep architecture in male and female mice. Injection of the hind paw, whether with CFA or saline, reduced some measures of circadian rhythmicity such as variance, period, and amplitude. CFA increased sleep duration primarily in the dark phase, while sleep bout length was decreased in the light and increased in the dark phase. Additionally, CFA reduced wake bout length, especially during the dark phase. Increases in REM and SWS duration and bouts were most significant in the dark phase, regardless of whether CFA had been injected at its onset or 12 hours prior. Taken together, these results indicate that inflammatory pain acutely promotes but also fragments sleep.

neuroscience↗