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Guerrin, C. G. J.

Publications and source records attributed to Guerrin, C. G. J..

2 recordsLinked to original sources

Apomorphine susceptibility and prenatal infection alter neurodevelopment, synaptic density and anticipatory behavior in rats

Schizophrenia is a complex psychiatric disorder, driven by genetic and environmental factors. While individual risk genes have limited impact, polygenic susceptibility increases the likelihood of schizophrenia and heightens sensitivity to environmental stressors, such as prenatal immune activation. Yet, preclinical studies often focused on single-gene mutations, leaving polygenic influences largely unexplored. Using the apomorphine-susceptible (APO-SUS) rat model, which exhibits schizophrenia-like features, we investigated how polygenic susceptibility influences early neurodevelopment, synaptic density, and behavior, and how these effects are modulated by prenatal immune activation. APO-SUS rats demonstrated early neurodevelopmental abnormalities, including a reduced number and duration of separation-induced ultrasonic vocalizations (USVs), increased principal frequency of USVs, and reduced heart rate variability (HRV), indicative of heightened sympathetic dominance commonly seen in psychiatric disorders. These effects were particularly pronounced in females. Male APO-SUS rats exhibited elevated synaptophysin levels, a presynaptic marker for synaptic density, in the frontal cortex during adolescence and in the hippocampus during adulthood. Interestingly, prenatal immune activation counteracted some of these changes, preventing HRV reduction and normalizing synaptophysin levels. Male and female APO-SUS rats, as well as Wistar male rats exposed to prenatal immune activation, showed anticipatory behavior during adolescence, but not in adulthood. Our results suggest that polygenic susceptibility induces early neurodevelopmental changes and that genetic and environmental risk factors do not always act synergistically; sometimes counterbalancing each other. Future studies should explore how early neurodevelopmental changes, such as alterations in USVs and HRV, influence later behavioral outcomes in polygenic models of schizophrenia. HighlightsO_LIApomorphine-susceptible rats show altered vocalizations and heart rate variability C_LIO_LIApomorphine susceptibility increases synaptophysin in frontal cortex and hippocampus C_LIO_LIPrenatal immune activation reduces synaptophysin in the adult frontal cortex C_LIO_LIPrenatal immune activation prevents apomorphine-susceptible brain and behavior changes C_LI

animal behavior and cognition↗

Different Sensitivity to Ethanol and Sucrose in DAT and SERT Knockout Rats

BackgroundDopamine and serotonin are key regulators of reward sensitivity, yet their distinct roles in motivating natural (e.g., sucrose) versus drug (e.g., ethanol) rewards remain unclear. Understanding these mechanisms could help explain individual variability in reward processing relevant to substance use vulnerability. MethodsWe assessed reward sensitivity in dopamine transporter (DAT) and serotonin transporter (SERT) knockout (KO) rats using both home cage (two-bottle choice for sucrose and ethanol) and operant paradigms (Pavlovian and instrumental learning). ResultsDAT KO rats showed lower sucrose preference (-27% for 2%, -13% for 4%) and intake (-42% for 4%), diminished Pavlovian responding for sucrose (-68%), and slower acquisition of sucrose-taking behavior ([~]+30 days) compared to WT rats. DAT KO rats also showed reduced ethanol preference in the home cage (-16%) despite an unchanged intake. Furthermore, operant performed was markedly reduced operant performance after the sucrose-to-ethanol transition (-83%), with no increase in ethanol-taking following sucrose exposure (0% change), unlike WT controls (+41%). SERT KO rats presented reduced sucrose preference (-5%) and intake (-46%) for the 4% solution only. In addition, SERT KO rats also showed reduced Pavlovian sucrose responding (- 28%) and slower acquisition of sucrose-taking ([~]+30 days) but intact responding and learning for ethanol. In the home cage, they displayed lower ethanol preference (-35%) without significant change in operant ethanol performance. A modest overall increase in ethanol-taking was seen post-sucrose in both SERT KO and WT, but without genotype-specific effects. Conclusion and ImplicationsDAT deletion broadly impaired sensitivity for both natural sucrose and ethanol rewards, particularly under effortful or devalued conditions. In contrast, SERT deletion produced more selective impairments by disrupting sucrose operant responding and moderately reducing ethanol reward preference. These findings reveal distinct but overlapping roles of DAT and SERT in regulating reward sensitivity, with implications for understanding individual vulnerability to substance use.

animal behavior and cognition↗