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Bertrand, B.

Publications and source records attributed to Bertrand, B..

5 recordsLinked to original sources

Central lipid sensing tunes accumbal D2R-neuron activity in appetitive behaviours

Energy homeostasis and motivated behaviours are tightly interconnected processes coordinated by peripheral metabolic signals and central reward circuits. Among these signals, circulating triglycerides (TG) have emerged as neuromodulators of mesolimbic dopamine functions and reward processing. However, whether TG directly regulate the activity of defined neuronal populations within the nucleus accumbens (NAc) during appetitive behaviours remains unknown. Here, we investigated how central TG availability shapes the in vivo activity of NAc dopamine D2 receptor-expressing spiny projection neurons (D2R-SPNs) across distinct nutritional and metabolic states. Using in vivo fiber photometry in Drd2-Cre mice, we monitored D2R-SPN Ca2+ dynamics during appetitive Pavlovian conditioning and refeeding. D2R-SPNs progressively developed robust responses to a reward-predictive conditioned stimulus (CS+) over the course of learning, while their activity during reward consumption remained stable. Acute elevation of central TG levels through carotid infusion did not alter D2R-SPN activity or behavioural performance in lean chow-fed mice, irrespective of whether they were fed or food-restricted. In contrast, in mice exposed to a high-fat diet (HFD), central TG delivery suppressed cue-evoked D2R-SPN activity in food-restricted animals without affecting reward consumption or behavioural outputs. Likewise, TG significantly reduced refeeding-evoked D2R-SPN activation in fasted HFD-mice, while leaving novelty-induced neuronal responses unchanged. Together, these findings demonstrate that obesogenic conditions reveal a metabolic state-dependent sensitivity of accumbal D2R-SPNs to circulating lipids. This work identifies TG as context-dependent modulators of D2R-SPN function and uncovers a mechanism through which dietary history interacts with current metabolic state to reshape the neural encoding of reward-predictive cues and food-directed behaviours.

neuroscience↗

High-throughput targeted paleoproteomics sex estimation on medieval Great Moravia individuals using MALDI-CASI-FTICR mass spectrometry

The estimation of the biological sex of archeological remains is crucial information in bioarchaeology and forensic anthropology. In recent years, proteomics based on molecular sexual dimorphism have emerged as a preferred method, particularly because of its minimally-invasive approach to extracting amelogenin X and Y proteins from tooth enamel. However, there is an increasing demand to accelerate this process while facilitating the analysis of large archaeological assemblages. This study presents a novel high-throughput targeted paleoproteomics method for biological sex estimation using MALDI-CASI-FTICR mass spectrometry. This approach combines the strengths of existing methods, including ultra-high resolution, significantly reduced processing times, targeted analysis, and scalability to large archaeological sample sets. The method was initially validated on modern individuals with known sex and subsequently applied to 130 adult and juvenile individuals from medieval Great Moravia (present-day Czech Republic). Biological sex was successfully estimated for all but one of the individuals. The results not only provide a more efficient biological sex estimation but also help to resolve a few errors in sex assessment previously encountered with osteomorphological and tooth morphometric techniques. The implementation of this method significantly improves the accuracy and efficiency of biological sex estimation, offering a powerful tool for anthropological research. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=79 SRC="FIGDIR/small/706309v1_ufig1.gif" ALT="Figure 1"> View larger version (33K): org.highwire.dtl.DTLVardef@1ede7e6org.highwire.dtl.DTLVardef@13d2f5org.highwire.dtl.DTLVardef@17ee44dorg.highwire.dtl.DTLVardef@1be9dd9_HPS_FORMAT_FIGEXP M_FIG C_FIG

evolutionary biology↗

Peripheral CB1R inhibition modulates food intake and metabolic efficiency in obesity independently of the gut-brain vagal axis

Background and PurposeObesity involves profound disruptions in neuronal circuits, neuroendocrine communication and the endocannabinoid system (ECS). While global cannabinoid type-1 receptor (CB1R) blockade improves metabolism, its clinical use is limited by neuropsychiatric side effects. Peripherally restricted CB1R antagonists offer a safer alternative, yet the neural pathways, specifically the role of the gut-brain vagal axis, mediating their effects remain unclear. Experimental ApproachWe investigated the metabolic and neural effects of peripheral inhibition of CB1R (JD5037 and AM6545) in lean and diet-induced obese (DIO). Metabolic parameters were assessed using indirect calorimetry, and neuronal activation was mapped by cFos immunoreactivity. The requirement for vagal signaling was examined using subdiaphragmatic vagotomy (SDV) and pharmacological blockade of cholecystokinin (CCK) and glucagon-like peptide-1 (GLP-1) receptors. Key ResultsPeripheral CB1R inhibition suppressed food intake and shifted nutrient partitioning toward fatty acid oxidation in DIO, but not lean, mice. Obesity upregulated CB1R expression in the nodose ganglia. In DIO mice, peripheral CB1R inhibition robustly activated satiety-related brainstem (NTS, AP, PBN) and hypothalamic (ARC, PVN) nuclei. SDV abolished brainstem activation but failed to blunt hypothalamic recruitment or the anorexigenic and metabolic benefits. Furthermore, antagonism of CCK or GLP-1 receptors did not prevent the feeding-suppressive effects of JD5037. Conclusions and ImplicationsOur findings reveal a dual-mechanism model: vagal pathways mediate brainstem engagement, while hypothalamic recruitment and metabolic improvements occur via vagal-independent signaling. These results demonstrate that peripherally restricted CB1R antagonists indirectly engage central homeostatic circuits, supporting their therapeutic potential for obesity even in conditions with impaired vagal signaling. Bullet point summaryO_ST_ABS What is already knownC_ST_ABSO_LIObesity is associated with elevated circulating endocannabinoids, reflecting chronic overactivation of the peripheral endocannabinoid system. C_LIO_LIClinical and preclinical studies indicate that peripheral CB1R inhibition ameliorates obesity-related dysfunctions. C_LI What this study addsO_LIPeripheral CB1R inhibition suppresses food intake and promotes fatty acid oxidation in obese but not lean conditions. C_LIO_LIPeripheral CB1R inhibition engages brainstem nuclei via vagal signaling and hypothalamic nuclei via vagal-independent mechanisms. C_LI Clinical significanceO_LIMetabolic state-dependent CB1R responsiveness must be considered when designing endocannabinoids-targeted obesity therapies. C_LIO_LIPeripheral CB1R antagonists engage central homeostatic circuits via body-brain pathways, warranting surveillance of CNS outcomes. C_LI

neuroscience↗

The gut-brain vagal axis governs mesolimbic dopamine dynamics and reward events

Reward-related processes have traditionally been ascribed to neural circuits centered on the dopamine (DA) system. While exteroceptive stimuli, such as food and drugs of abuse, are well-established activators of DA-neuron activity, growing evidence indicates that interoceptive signals also play a critical role in modulating reward. Among these, the gut-brain vagal axis has emerged as a key pathway, yet its precise contribution to mesolimbic DA-dependent signaling, dynamics and behaviors remains poorly defined. Here, we combine complementary ex vivo and in vivo approaches across multiple scales to investigate how the gut-brain vagal axis regulates DA dynamics and reward-related behaviors. We show that gut-brain vagal tone is essential for gating mesolimbic DA system activity and functions, modulating DA-dependent molecular and cellular processes, and scaling both food- and drugs-induced reinforcement. These findings challenge the traditional brain-centric view of reward processing, supporting a more unified and integrated model in which gut-derived and vagus-mediated interoceptive signals are pivotal in intrinsically shaping motivation and reinforcement. By uncovering the influence of gut-brain vagal communication on mesolimbic DA functions, this work offers new insights into the neurobiological mechanisms underlying both adaptive and maladaptive reward processes, with broad implications for eating disorders and addiction.

neuroscience↗

The gut-brain vagal axis scales hippocampal memory processes and plasticity

The vagus nerve serves as an interoceptive relay between the body and the brain. Despite its well-established role in feeding behaviors, energy metabolism, and cognitive functions, the intricate functional processes linking the vagus nerve to the hippocampus and its contribution to learning and memory dynamics remain still elusive. Here, we investigated whether and how the gut-brain vagal axis contributes to hippocampal learning and memory processes at behavioral, functional, cellular, and molecular levels. Our results indicate that the integrity of the vagal axis is essential for long-term recognition memories, while sparing other forms of memory. In addition, by combing multi-scale approaches, our findings show that the gut-brain vagal tone exerts a permissive role in scaling intracellular signaling events, gene expressions, hippocampal dendritic spines density as well as functional long-term plasticities (LTD and LTP). These results highlight the critical role of the gut-brain vagal axis in maintaining the spontaneous and homeostatic functions of hippocampal ensembles and in regulating their learning and memory functions. In conclusion, our study provides comprehensive insights into the multifaceted involvement of the gut-brain vagal axis in shaping time-dependent hippocampal learning and memory dynamics. Understanding the mechanisms underlying this interoceptive body-brain neuronal communication may pave the way for novel therapeutic approaches in conditions associated with cognitive decline, including neurodegenerative disorders. HighlightsO_LIThe gut-brain vagal axis contributes to long-term recognition memories C_LIO_LIThe gut-brain vagal axis is dispensable for short-term memories C_LIO_LIThe vagal axis regulates molecular and signaling dynamics in the hippocampus C_LIO_LIThe gut-brain vagal tone shapes the structural density of hippocampal dendritic spines C_LIO_LIThe gut-brain vagal tone ensures physiological forms of synaptic plasticity C_LI

neuroscience↗