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Bjornson, K. J.

Publications and source records attributed to Bjornson, K. J..

2 recordsLinked to original sources

Repeated cocaine reorganizes striatal ensembles along the ventral-dorsal axis

Drugs of abuse produce lasting adaptations in the striatum. A prominent theory holds that the early reinforcing effects of cocaine preferentially engage the ventral striatum, and repeated cocaine use recruits dorsal striatal systems associated with habitual drug-related behavior. However, this transition has largely been conceptualized on the population level, obscuring how it is implemented within individual neurons and how repeated drug exposure reorganizes drug responsivity within these circuits. Here, we used single-cell calcium imaging to examine ventral and dorsal striatal responses to acute and repeated cocaine exposure in mice. Cocaine broadly suppressed neuronal activity throughout the ventral and dorsal striatum. However, repeated exposure produced opposing changes in cocaine-modulated neurons across the ventral-dorsal axis. The cocaine-activated population was reduced ventrally while expanding dorsally. Unique to dorsal striatum, repeated cocaine engendered two distinct features of activity: 1) Cocaine-activated cells had weak baseline coupling with the surrounding neuronal population and 2) The emergence of a subpopulation of neurons exhibiting regular, slow rhythmic activity in response to cocaine. Thus, repeated cocaine effects reflect a change in how the circuit is organized rather than simply how strongly it is engaged. This organization may allow cocaine to engage patterns of dorsal striatal activity that are largely absent under baseline conditions, creating a circuit state that becomes increasingly specific to the presence of the drug.

neuroscience↗

Aberrant regulation of the Rap1 small GTPase in response to escalating, intermittent stress produces hippocampal synaptic and cognitive dysfunction

The effects of repeated stress on cognitive impairment are thought to be mediated, at least in part, by reductions in the stability of dendritic spines in brain regions critical for proper learning and memory, including the hippocampus. Small GTPases are particularly potent regulators of dendritic spine formation, stability, and morphology in hippocampal neurons. Through the use of small GTPase protein profiling in mice, we identify increased levels of synaptic Rap1 in the hippocampal CA3 region in response to escalating, intermittent stress. We then demonstrate that increased Rap1 in the CA3 is sufficient in and of itself to produce stress-relevant dendritic spine and cognitive phenotypes. Further, using super-resolution imaging, we investigate how the pattern of Rap1 trafficking to synapses likely underlies its effects on the stability of select dendritic spine subtypes. These findings illuminate the involvement of aberrant Rap1 regulation in the hippocampus in contributing to the psychobiological effects of stress.

neuroscience↗