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cavallino, l.

Publications and source records attributed to cavallino, l..

4 recordsLinked to original sources

Reactivation of threat conditioning memory in humans: disentangling the effects on emotional memory and cognitive biases.

Learning to detect and respond to threats is fundamental for survival and is often modeled through threat conditioning (TC) paradigms. While these paradigms reliably produce implicit memories that elicit physiological and behavioral responses to conditioned stimuli (CS), less is explored about how TC influences cognitive and emotional biases, particularly those implicated in anxiety disorders, such as threat overestimation and negative stimulus representation. In this study, we investigated the dynamic interaction between the reactivation of the implicit threat memory and these cognitive biases using a validated TC paradigm in humans. In Experiment 1, participants underwent TC on Day 1, followed by a memory reactivation session (incomplete reminder: one unreinforced CS+) and a highly demanding working memory (HWM) task, used as an amnesic manipulation, or a control condition on Day 2. On Day 3, memory retention was tested using a simplified, single-trial protocol (one CS+, one CS-, and one neutral CS), followed by tasks assessing threat valuation and representation. Results indicated that the HWM task administered post-reactivation significantly reduced skin conductance responses (SCRs) and attenuated cognitive biases, without altering expectancy of the unconditioned stimulus (US). In Experiment 2, we evaluated the effect of varying reactivation frequency (none, one, or two reminders) on implicit memory and cognitive biases. While repeated reactivations generalized the conditioned response to other stimuli, cognitive and emotional biases remained stable, suggesting a dissociation between memory generalization and evaluative processing. These findings demonstrate that implicit threat memories can be selectively modified through post-reactivation interventions, affecting both physiological and cognitive-emotional domains. Importantly, the distinct effects of memory reactivation and reconsolidation on physiological versus cognitive outcomes support the existence of temporally and functionally dissociable mechanisms. This research highlights the need to consider cognitive biases alongside physiological responses when evaluating memory-based interventions and offers novel insight into mechanisms underlying anxiety maintenance and treatment.

neuroscience↗

Agonistic behavior and fear response during consecutive encounters in female fish

While consecutive agonistic encounters modulating aggressive behavior are well studied in males, the extent to which social behavior can be altered by fear sensing during consecutive agonistic encounters remains unexplored. A well-established paradigm to assess fear sensing is the exposure to alarm substances (AS) from conspecifics in Ostariophysi fish, such as zebrafish, which causes several physiological and behavioral changes associated to distress. Considering that the exposure to AS induces changes in individual behavior associated to fear response, the aim of the present work is to examine whether repeated exposure to AS alters both agonistic behavior and fear response in female zebrafish. Moreover, since female aggression is understudied when compared to males, this study also assesses possible differences according to the reproductive stage. We performed intrasexual dyadic encounters between female zebrafish to determine if agonistic behavior is altered during two consecutive contests and by the presence of AS. When comparing agonistic behavior in different reproductive stages, results suggest there are no differences in latency and in freezing. Regarding time of aggression, while there are no differences between contests in prespawning or postspawning, significant differences are detected between postspawning dyads and mixed dyads with both females in different reproductive stages. Results suggest that exposure to AS reduces female motivation to engage in an agonistic encounter while aggressive behavior is still maintained despite sensing AS as potential threat, regardless of corresponding to the first or second contest. Finally, similar to agonistic behavior, the effect of fear sensing on individual behavioral parameters such as distance, mean velocity and freezing is also observed during a first and also a second exposure to AS. To the best of our knowledge, this is the first evidence assessing how consecutive agonistic encounters with a real opponent can be altered by repeated exposure to AS. Summary statementWe assess whether repeated exposure to distress alters both agonistic behavior and fear response in female zebrafish, by performing consecutive agonistic encounters with a real opponent exposed to alarm substances.

animal behavior and cognition↗

Remembering the opponent: neuronal activation associated with social memory in Zebrafish

Learning and remembering an opponent and the characteristics of a previous encounter may allow individuals to modify their behavior based on that acquired information. In the present study, using a long-term memory paradigm associated with social interactions, we aimed to evaluate the neuronal activation underlying individual recognition and memory of a previous agonistic encounter in male zebrafish. By quantifying a marker of neuronal activation, the immediate early gene c-fos, we compared the activation in different telencephalic nuclei belonging to the social decision-making network. Two dorsal nuclei, the medial (Dm) and the lateral (Dl), and two ventral nuclei, the ventral (Vv) and the dorsal (Vd), were evaluated by quantifying c-fos protein by immunohistochemical techniques. Two agonistic encounters between the same pair of opponents were performed, and the number of c-fos-immunopositive cells was quantified immediately after the second encounter in fish that had been treated with an amnesic agent after the first encounter (MK-801) and untreated individuals (Water), as well as a Control group with no physical interaction. We found that the Vv nucleus showed lower activation in individuals not exposed to physical interaction than those exposed (MK-801 and Water treatment). The Dl nucleus showed a higher activation only in individuals previously treated with MK-801, who would face an unremembered opponent, but not in those treated with water, which recognized the opponent. Our study provides evidence as a first step to understanding the neuronal processes underlying individual recognition and retrieval of an opponent. Summary statementOur study provides new information about the neuronal activation related to individual recognition and social interaction in zebrafish

animal behavior and cognition↗

Recognizing the opponent: the consolidation of long-term social memory in zebrafish males

Recognizing and remembering another individual in a social context could be beneficial for individual fitness. Especially in agonistic encounters, remembering an opponent and the previous fight could allow avoiding new conflicts. Considering this, we hypothesized that this type of social interaction forms a long-term recognition memory lasting several days. It has been shown that a second encounter 24 hours later between the same pair of zebrafish males is resolved with lower levels of aggression. Here, we evaluated if this behavioral change could last for longer intervals and a putative mechanism associated with memory storage: the recruitment of NMDA receptors. We found that if a pair of zebrafish males fight and 48 or 72 hours later fight again, they resolved the second encounter with lower levels of aggression. However, if immediately after the first encounter opponents were exposed to MK-801 (NMDA receptor antagonist), they resolve the second one with the same levels of aggression, that is, no reduction in aggressive behaviors was observed. These results suggest the formation of a long-term social memory related to recognizing a particular opponent and/or the outcome and features of a previous fight.

animal behavior and cognition↗