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Bouzier-Sore, A.-K.

Publications and source records attributed to Bouzier-Sore, A.-K..

2 recordsLinked to original sources

Optimizing therapeutic hypothermia conditions in a translational preclinical model of neonatal hypoxia-ischemia in rats

BackgroundTherapeutic hypothermia is the only clinically approved treatment for neonatal hypoxia-ischemia (NHI), although its efficacy remains partial. In preclinical research, hypothermia is widely used as a reference therapy; however, its protocol is highly variable across studies, limiting robust comparisons with emerging neuroprotective strategies. This study aimed to define an optimal and standardized hypothermia protocol in the Rice-Vannucci model, not to challenge clinical practice, but to establish a reliable benchmark for preclinical therapeutic development. MethodsNHI was induced in postnatal day 7 (P7) rat pups, followed by normothermia or hypothermia for 2, 3, or 5 hours. Short- and long-term outcomes were assessed using lesion volume measurements by MRI, neurological scoring, behavioral tests, and histological analyses. The impact of immediate hypothermia initiation was also examined. ResultsAcross analyses, both 2- and 3-hour hypothermia durations provided greater neuroprotection than 5 hours--including brain lesion volume, motor and cognitive performances, and markers of neuronal preservation and neuroinflammation. However, for several parameters, 2 hours of hypothermia showed superior efficacy compared with 3 hours. Immediate initiation further modestly improved outcomes. ConclusionA 2-hour hypothermia protocol represents the most robust and reproducible preclinical reference, enabling meaningful comparison with novel therapies in the Rice-Vannucci model. IMPACTO_LIBy establishing an optimized hypothermia protocol in the Rice-Vannucci model, this study offers a consistent and robust reference for preclinical evaluation of emerging therapies. C_LIO_LIIt does not question clinical hypothermia protocols, but addresses variability in preclinical literature C_LIO_LIOptimizing the hypothermia reference protocol is mandatory to reliably identify new effective treatments in preclinical studies and to enhance their likelihood of successful and efficient clinical translation C_LI

neuroscience↗

A lactate-dependent shift of glycolysis mediates synaptic and cognitive processes

Control of brain energy metabolism and regulation of synaptic activity through gliotransmission are two important ways, through which astrocytes contribute to mental functions. However, the potential functional and molecular links between these two astrocyte-dependent processes have been scantly explored. Here we show that a lactate-dependent shift of glycolysis underlies the production of the gliotransmitter D-serine by acute activation of astrocyte type-1 cannabinoid (CB1) receptors, thereby gating synaptic and cognitive processes. Acute cannabinoid application causes a CB1 receptor-dependent rapid and reversible increase of lactate production and release in primary astrocyte cultures. As shown before, mutant mice lacking the CB1 receptor gene in astrocytes (GFAP-CB1-KO) were impaired in a novel object recognition (NOR) memory task. This phenotype was rescued not only by the gliotransmitter D-serine, but also by its precursor L-serine. Surprisingly, the administration of lactate and of an agonist of the lactate receptor HCAR1 also reverted the memory impairment of GFAP-CB1-KO mice. This rescue effect was abolished by in vivo blockade of the astrocyte-specific phosphorylated pathway (PP), which diverts glycolysis towards L-serine synthesis, suggesting that lactate signaling might promote the accumulation of this amino acid. Consistent with this idea, lactate and HCAR1 agonism increased the co-agonist occupancy of CA1 post-synaptic hippocampal NMDA receptors. This effect of lactate was abolished by blockade of PP. By establishing a mechanistic link between lactate production and signaling, serine availability, synaptic activity and behavior, these results reveal an unforeseen functional connection between energy metabolism and gliotransmission to control cognitive processes.

neuroscience↗