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Guillaume, C.

Publications and source records attributed to Guillaume, C..

4 recordsLinked to original sources

Maternal low protein diet alters the development of reward circuits from childhood to adulthood by reshaping its function

Inadequate nutrition during pregnancy can lead to intrauterine growth retardation and low birth weight, which in turn increases the risk of developing metabolic disorders in adulthood, according to various epidemiological and clinical studies. The inclination of individuals born with low birth weight towards palatable foods indicates a possible modification in the hedonic aspect of their eating behavior. However, our understanding of the ontogenesis of structural organization and function within the brains reward circuits remains limited. Therefore, the objective of this research is to investigate the preferences for palatable food, molecular signatures of reward circuits, and functional properties of the nucleus accumbens (NAc) in a rat model of perinatal protein restriction (LP). Starting from weaning, continuing into adolescence and adulthood, a longitudinal analysis was conducted on rats born to mothers with protein-restricted diets during gestation and lactation (LP pups), comparing them to pups born from control dams (CD pups). The LP group exhibited an increased preference for palatable food at day 25 after birth (P25), followed by a decreased preference during adolescence (P50), and no significant difference in palatable food preference at P95 (young adult) compared to CD rats. Molecular and electrophysiological assessments of medium spiny neurons (MSN) in the NAc revealed a reorganization of reward circuits during crucial developmental periods, potentially influencing the attractiveness of palatable food for the LP group. This study represents the first exploration of how preferences for palatable food evolve throughout an individuals lifespan and how these observations correlate with the remodeling of reward circuits. By shedding light on the molecular and functional aspects of reward circuits, we contribute to a better understanding of the link between perinatal nutrition, behavioral preferences, and the underlying neural mechanisms.

neuroscience↗

Ex vivo functional characterization of mouse olfactory bulb projection neurons reveals a heterogenous continuum

Mitral and tufted cells in the olfactory bulb (OB) act as an input convergence hub and transmit information to higher olfactory areas. Since first characterized, they have been classed as distinct projection neurons based on size and location: laminarly-arranged mitral cells with a diameter larger than 20{micro}m in the mitral layer (ML), and smaller tufted cells spread across both the ML and external plexiform layer (EPL). Recent in vivo work has shown that these neurons encode complementary olfactory information, akin to parallel channels in other sensory systems. Yet, many ex vivo studies still collapse them into a single class, mitral/tufted, when describing their physiological properties and impact on circuit function. Using immunohistochemistry and whole-cell patch clamp electrophysiology in fixed or acute slices from adult mice, we attempted to align in viv o and ex vivo data and test a soma size-based classifier of OB projection neurons using passive and intrinsic firing properties. We found that there is no clear separation between cell types based on passive or active properties. Rather, there is a heterogeneous continuum with three loosely clustered subgroups: EPL tufted cells, and putative tufted or putative mitral cells in the ML. These findings illustrate the large functional heterogeneity present within the OB projection neurons and complement existing literature highlighting how heterogeneity in sensory systems is preponderant and possibly used in the OB to decode complex olfactory information.

neuroscience↗

A widespread family of ribosomal peptide metallophores involved in bacterial adaptation to copper stress

Ribosomally synthesized and post-translationally modified peptides (RiPPs) are a structurally diverse group of natural products that bacteria employ in their survival strategies. Herein, we characterized the structure, the biosynthetic pathway and the mode of action of a new RiPP family called bufferins. With thousands of homologous biosynthetic gene clusters throughout the eubacterial phylogenetic tree, bufferins form by far the largest family of RiPPs modified by multinuclear non-heme iron-dependent oxidases (MNIO, DUF692 family). Using Caulobacter vibrioides bufferins as a model, we showed that the conserved Cys residues of their precursors are transformed into 5-thiooxazoles, further expanding the reaction range of MNIO enzymes. This rare modification is installed in conjunction with a partner protein of the DUF2063 family. Bufferin precursors are the first examples of bacterial RiPPs found to feature an N-terminal Sec signal peptide and thus to be exported by the ubiquitous Sec pathway, a new paradigm in the RiPP field. Other original features of bufferins are their large size and protein-like fold, which blurs the line between modified peptides and proteins. We reveal that bufferins are involved in copper homeostasis, and their metal-binding propensity requires the thiooxazole heterocycles. Bufferins enhance bacterial growth under copper stress by sequestering excess metal ions in the periplasm. Our study thus describes a large family of RiPP metallophores and unveils a widespread but overlooked metal homeostasis mechanism in eubacteria likely to be relevant to One-Health strategies. Significance statementCopper is both essential and toxic in excess. Bacteria face copper in their environments, notably in phagocytes, hence they have developed several defense mechanisms. We discovered a widespread strategy of protection from copper, through the biosynthesis of natural products that we call bufferins. Bufferins are ribosomally synthesized post-translationally modified peptides (RiPPs), natural products with key roles in bacterial physiology and ecology. Bufferins enhance bacterial growth under copper stress by complexing with the metal using thiooxazole heterocycles that result from enzymatic modification of cysteine residues. With thousands of homologs throughout the eubacterial phylogenetic tree, bufferins represent a highly prevalent strategy of adaptation to metal stress. They are larger in size than most RiPPs, expanding the concept of RiPPs to modified proteins.

microbiology↗

Cholecystokinin exerts a major control on corticostriatal synapse and motor behavior

Cholecystokinin (CCK) is a neuropeptide detected and produced at high concentrations in the brain. To date it was mainly used as a neuronal marker of neuronal subtypes and its role as a neuromodulator was poorly known. However, few studies showed that it could be an essential neuromodulator in various brain structures, playing a role on synaptic plasticity and memory consolidation. In order to better understand the processes by which CCK impacts plasticity, we focus our attention on the striatum, a nucleus involved in procedural learning and motor behavior, with a rich expression of CCK receptor type 2 (CCK2R). By using in-vivo and ex-vivo electrophysiological approaches, we show that CCK is involved in the corticostriatal synaptic transmission and has a key role in its plasticity. Using in-vivo optopatch-clamp of identified MSNs, we observe a decrease of corticostriatal synaptic transmission after an injection of CCK2R antagonist, leading to a reduction of evoked excitatory post synaptic potential recorded on both MSNs populations (direct and indirect pathways). In addition, we evaluate the impact of CCK2R antagonist on corticostriatal synaptic plasticity using Spike Timing Dependent Plasticity (STDP) protocols on MSNs of acute rat brain slices. Results demonstrate that the CCK2R antagonist is able to reverse the corticostriatal synaptic plasticity (i.e. LTP protocol leads to LTD). Finally, we evaluate the effect of CCK2R antagonist on the motor behavior of juvenile rats challenged with different locomotor tests and show a sex-dependent impairment of motor behavior. Overall, our results demonstrate that CCK and its receptor CCK2R are essential for inputs processing encoding in the corticostriatal network with consequences on motor activity. Significant statementCholecystokinin (CCK) is considered to be one of the most abundant neuropeptides in the brain but its role as a neuromodulator is not well understood. In our study we investigate its role on the corticostriatal transmission which is a well characterized synapse highly involved in motor and cognitive functions. Here, we show that CCK2R is crucial for the corticostriatal synaptic transmission and plasticity. Indeed, CCK binding on CCK2R is essential for LTP induction by STDP. Finally, we demonstrate that the blockage of CCK2R affects corticostriatal synaptic transmission and motor ability in male rats.

neuroscience↗