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Biology subjects

Caille, S.

Publications and source records attributed to Caille, S..

2 recordsLinked to original sources

A single mild juvenile TBI in mice leads to regional brain tissue abnormalities at 12 months of age that correlate with cognitive impairment at the middle age in male mice

Traumatic brain injury (TBI) has the highest incidence amongst the pediatric population and its mild severity represents the most frequent cases. Moderate and severe injuries as well as repetitive mild TBI result in lasting morbidity. However, whether a single mild TBI sustained during childhood can produce long-lasting modifications within the brain is still debated. We aimed to assess the consequences of a single juvenile mild TBI (jmTBI) at 12 months post-injury in a mouse model. Non-invasive diffusion tensor imaging (DTI) revealed significant microstructural alterations in the hippocampus and the in the substantia innominata/nucleus basalis (SI/NB), structures known to be involved in spatial learning and memory. DTI changes paralled neuronal loss, increased astrocytic AQP4 and microglial activation in the hippocampus. In contrast, decreased astrocytic AQP4 expression and microglia activation were observed in SI/NB. Spatial learning and memory were impaired and correlated with alterations in DTI-derived derived fractional ansiotropy (FA) and axial diffusivity (AD). This study found that a single juvenile mild TBI leads to significant region-specific DTI microstructural alterations, distant from the site of impact, that correlated with cognitive discriminative novel object testing and spatial memory impairments at 12 months after a single concussive injury. Our findings suggest that exposure to jmTBI leads to a chronic abnormality, which confirms the need for continued monitoring of symptoms and the development of long-term treatment strategies to intervene in children with concussions.

neuroscience↗

Poor attentional control as a sex-specific biomarker to assess vulnerability to nicotine addiction in mice

Every day thousands of people smoke a first cigarette, exposing themselves to the risk of becoming addicts. But this risk is not equal from individual to individual, inviting the hypothesis of potential biomarkers for predicting baseline vulnerability to addiction. One property of nicotine is to increase attentional capacities. However, the role of this pro-cognitive nicotinic effect in initiation of habitual smoking is unknown. Here, we investigated whether the differential effects of nicotine on cognitive performance in mice were predictive of sensitivity to nicotine reward and, if so, whether this characteristic was sex dependent. Naive populations of male and female mice were first assessed for their attentional performances in the attentional cued-Fixed-Consecutive-Number task (FCNcue) in baseline conditions and after nicotine injections (0.15 and 0.30 mg/kg). Next, all mice underwent nicotine-induced conditioned place preference (CPP) in order to evaluate inter-individual differences in nicotine (0.30 mg/kg) reward sensitivity. Our results showed that innately impulsive males, but not females, benefited from the pro-cognitive effect of nicotine and were also subsequently more sensitive to nicotine reward, indicating increased vulnerability to developing nicotine addiction. Females displayed a completely different behavioural pattern, whereby nicotine reward sensitivity was independent of baseline attentional performances. These results suggest that the pro-cognitive effect of nicotine plays a key role in the development of nicotine addiction in males but not females. Moreover, they signal that the cognitive processes and neurobiology underpinning innate impulsivity may differ significantly between males and females.

animal behavior and cognition↗