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Sunday-Jimmy, P. B.

Publications and source records attributed to Sunday-Jimmy, P. B..

2 recordsLinked to original sources

Personality Variation in Associative Learning and Memory Retention in Zebrafish (Danio rerio)

Animals differ in how they acquire and retain information, and modify their behavior while interacting with their environment. These differences have been linked to personality type, yet how personality type and sex influence reward-associated memory is not well understood. We investigated the effects of personality type, sex, days of conditioning, and food reward on learning and memory retention in zebrafish using the conditioned place preference paradigm. We conditioned zebrafish to associate a visual background with a food reward across eleven sessions and assessed memory recall seven days later by measuring duration, frequency of entry, and latency to first entry in the conditioned zone. We observed that bold fish had early conditioned zone engagement, whereas shy zebrafish gradually increased their behavior into the conditioned zone with repeated conditioning. With food reward, preference for the conditioned zone increased after 7 and 11 days post-conditioning relative to baseline. Seven days after the last conditioning with food reward, the preference for conditioned zone remained unchanged in shy fish. This suggests that shy fish retain the ability to recall the learned association for at least 7 days after conditioning. Overall, personality, food reward, and sex influence behavioral changes in food reward-associated cognition, with shy-treated males showing gradual increases in behavior into the conditioned zone. These findings suggest that personality and sex differences may depend on the nature and valence of the associative task to recall. Thus, this study emphasizes the importance of assessing memory retention alongside learning acquisition to understand the relationship between personality types and cognition.

animal behavior and cognition↗

Neuroendocrine Stress Induces Differential Oxidative Stress and Antioxidant Profiles between Proactive and Reactive Stress Coping Styles

Neuroendocrine stressors can disrupt the brains redox equilibrium by generating high levels of reactive oxygen species (ROS) that lead to oxidative stress. The magnitude of the effect of neuroendocrine stressors on brain redox equilibrium can be influenced by many internal and external factors. To what extent the relationship between neuroendocrine and oxidative stress is modulated by an individuals stress coping style is only beginning to be understood. To explore this, we subjected proactive and reactive zebrafish to an acute novelty stressor and subsequently quantified changes in behavior and whole brain biomarkers of oxidative stress and antioxidants (DNA damage, total glutathione (GSH), glutathione ratio, oxygen radical absorbance capacity (ORAC), and superoxide dismutase (SOD). Stressed fish had significantly higher total glutathione, trends higher ORAC, DNA damage, and glutathione ratio, and trend for lower SOD levels compared to controls. In addition, individuals with a reactive stress coping style exhibited significantly higher levels of SOD and glutathione ratio, and a trend for ORAC compared to proactive individuals. From a principal component analysis, we also found that the reactive individuals had significantly higher PC1 scores (antioxidant axis) compared to the proactive, and a trend for stressed fish having higher PC1 scores than control. The oxidative stress axis (PC2) showed that the stressed fish had a significantly higher PC2 score relative to control fish. Our results show that neuroendocrine stress-induced disruption of redox equilibrium in the brain differs by stress coping style. Those with a reactive stress coping style have elevated antioxidant capabilities and capacities. Overall, our findings suggest that elevated reactivity to neuroendocrine stressors commonly seen in reactive stress coping styles may be mitigated through the glutathione buffering system and other antioxidants.

animal behavior and cognition↗