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Staszko, S. M.

Publications and source records attributed to Staszko, S. M..

2 recordsLinked to original sources

Frontal cortex norepinephrine, serotonin, and dopamine dynamics in an innate fear-reward behavioral model

Animals must survive by foraging for food in an uncertain and dangerous world. Neural circuits for naturalistic decision-making under these conditions must balance competing motivational demands for approaching reward and avoiding danger. To enable flexible switching between motivational states, neuromodulators are released and alter neural excitability and plasticity. The question of how neuromodulators encode motivational state is thus fundamental to systems neuroscience, yet the dynamics of neuromodulators during naturalistic decision making are not fully understood. Here, we developed a naturalistic approach/avoidance task in mice involving a tradeoff between seeking reward versus safety in the presence of looming predation risk. We utilized fiber photometry, computational behavior tracking, and local pharmacology in this task. Silencing medial prefrontal cortex (mPFC) reduced looming defensive behaviors. Moreover, by using fiber photometry combined with GPCR-based sensors, we found that cortical norepinephrine (NE) plays a more prominent role in encoding looming threats while dopamine (DA) represents reward and threat. In contrast, serotonin (5HT) dynamic negatively correlates to both emotional valences. To begin to understand neuromodulatory interactions, we used ex vivo slice physiology to understand 5HT impact on spontaneous firing of locus coeruleus NE neurons. In conclusion, monoamines such as NE, DA, 5HT can converge in their encoding of naturalistic motivated behaviors as well as dissociate from one another. By utilizing this novel innate reward-threat task, we can better understand neurochemical signaling events during natural behavior, and may contribute to the understanding of neural mechanisms underlying emotional decision-making and its implications for psychiatric disorders.

neuroscience↗

The impact of familiarity on cortical taste coding

The role of the gustatory region of the insular cortex in mediating associative taste learning, such as conditioned taste aversion, has been well studied. However, while associative learning plays a role in some taste behaviors, such as avoidance of toxins, taste stimuli are often encountered by animals in their natural environment without explicit consequences. This type of inconsequential experience with sensory stimuli has been studied in other sensory systems, generally with the finding that neuronal responses habituate with repeated sensory exposure. The present study sought to determine the effect of taste familiarity on population taste coding in mouse gustatory cortex (GC). Using microendoscope calcium imaging, we studied the taste responses of visually identifiable neurons over five days of taste experience, during which animals could freely choose to consume taste stimuli. We found that the number of active cells in insular cortex, as well as the number of cells characterized as taste-responsive, significantly decreased as animals became familiar with taste stimuli. Moreover, the magnitude of taste-evoked excited responses increased, and inhibited responses decreased with experience. By tracking individual neurons over time, we focused on taste coding in a subpopulation of "stable" neurons that were present on all days of the taste familiarity paradigm. The population-level response across these stable cells was distinct when taste stimuli were novel but became more intercorrelated among those taste stimuli mice willingly consumed as the stimuli became familiar. Overall, these results highlight the effects of familiarity on taste responses in gustatory cortex.

neuroscience↗