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Majeur, D.

Publications and source records attributed to Majeur, D..

4 recordsLinked to original sources

Lipid droplet lipolysis in POMC neurons regulates energy homeostasis in a sex-specific manner

The hypothalamus is a central regulator of glucose and energy homeostasis, with arcuate nucleus (ARC) neurons orchestrating these processes. Agouti-related peptide (AgRP) and pro-opiomelanocortin (POMC) neurons integrate metabolic cues to control feeding behavior and systemic metabolism. Among these cues, fatty acids (FA) have emerged as key modulators of ARC neuronal activity. While neuronal sensing of circulating FA has begun to be defined, the contribution of FA derived from endogenous lipid stores to ARC neuron function and energy homeostasis remains largely unexplored. We recently identified lipid droplets (LD) as regulated FA reservoirs that control FA availability and metabolism in orexigenic AgRP neurons, thereby modulating their activity and regulating feeding. This prompted us to investigate whether LD-derived FA similarly regulate POMC neuron function. To this end, we targeted adipose triglyceride lipase (ATGL), which catalyzes the first committed step of LD lipolysis, in POMC neurons. We show that LD are present in POMC neurons under basal conditions both in vitro and in vivo, and that pharmacological or genetic inhibition of ATGL increases LD abundance. ATGL deficiency enhances spontaneous firing of POMC neurons and leads to reduced body weight, fat and lean mass in males, but not females. Consistent with enhanced glucose metabolism, ATGL loss lowers glycemia and insulinemia and increases carbohydrate utilization in chow-fed males. In contrast, ATGL deficiency does not alter metabolic adaptations to cold exposure, fasting or diet-induced obesity in either sex. Collectively, these findings establish ATGL-dependent LD lipolysis in POMC neurons as a previously unrecognized, sex-dependent regulator of energy homeostasis.

neuroscience↗

Immunometabolic state modulation of sequential decision making in patch-foraging mice

Animals have evolved sophisticated behavioural and metabolic adaptations to respond to threats to homeostasis, including resource scarcity and infectious pathogens. Energy deficits associated with lack of food availability and sickness-associated anorexia elicit distinctive hypometabolic states, however how such states are integrated with higher-order cognition is largely unknown. Patch-foraging paradigms have proven useful for deciphering evolutionarily conserved and ethologically grounded insights into cost-benefit decision-making as animals continually deliberate between exploiting and exploring their environment. We developed and extensively validated a touchscreen-based patch-foraging task for mice in which food reward dynamically varied across trials, in a dataset comprising over 111,000 sequential decisions from 35 adult male mice. Contrary to predictions that emphasize the impact of inflammation to blunt effortful reward-driven behaviour, our results demonstrate that systemic lipopolysaccharides-induced inflammation promotes hyper-exploitation by attenuating exploratory choice behaviour in animals interacting with complex food environments. Such behaviour can be seen as a bias towards immediate outcomes, with impulsivity as a feature affecting the weighting of temporal factors. Given the ubiquity of systemic inflammation in numerous infectious, metabolic and psychiatric disorders featuring dysfunctional value- and cost-sensitive behaviour, these results provide insight into how immunometabolic states are linked to altered decision-making.

neuroscience↗

Neuronal lipid droplets play a conserved and sex-biased role in maintaining whole-body energy homeostasis

ABSTRACTLipids are essential for neuron development and physiology. Yet, the central hubs that coordinate lipid supply and demand in neurons remain unclear. Here, we combine invertebrate and vertebrate models to establish the presence and functional significance of neuronal lipid droplets (LD) in vivo. We find that LD are normally present in neurons in a non-uniform distribution across the brain, and demonstrate triglyceride metabolism enzymes and lipid droplet-associated proteins control neuronal LD formation through both canonical and recently-discovered pathways. Appropriate LD regulation in neurons has conserved and male-biased effects on whole-body energy homeostasis across flies and mice, specifically neurons that couple environmental cues with energy homeostasis. Mechanistically, LD-derived lipids support neuron function by providing phospholipids to sustain mitochondrial and endoplasmic reticulum homeostasis. Together, our work identifies a conserved role for LD as the organelle that coordinates lipid management in neurons, with implications for our understanding of mechanisms that preserve neuronal lipid homeostasis and function in health and disease. HIGHLIGHTSO_LILipid droplets (LD) normally form in neurons across species Neuronal LD are regulated by a conserved gene network C_LIO_LINeuronal LD regulation plays a conserved and sex-biased role in maintaining energy homeostasis C_LIO_LILD regulation supports ER and mitochondrial function in hunger-activated neurons C_LI GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=200 SRC="FIGDIR/small/613929v1_ufig1.gif" ALT="Figure 1"> View larger version (54K): org.highwire.dtl.DTLVardef@1936e92org.highwire.dtl.DTLVardef@40478aorg.highwire.dtl.DTLVardef@18d5faorg.highwire.dtl.DTLVardef@882ee9_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗

Microglial adipose triglyceride lipase regulates neuroinflammatory and behavioural responses to LPS

Adipose triglyceride lipase (ATGL), the enzyme that catalyses the rate-limiting step of triglyceride lipolysis, regulates inflammation in peripheral tissues. ATGL has been associated with both pro- and anti-inflammatory responses in different tissues suggesting its actions are dependent on cell type. Recent studies in microglia and macrophages suggest that lipid droplets (LD), a triglyceride storing organelle, and LD lipolysis via ATGL are important components of inflammatory responses. Here, we determined the impact of ATGL inhibition and microglia-specific ATGL loss-of-function on inflammatory and behavioural responses to acute pro-inflammatory insult. First, we evaluated the impact of lipolysis inhibition on lipopolysaccharide (LPS)-induced expression and secretion of cytokines in mouse primary microglia cultures. LPS led to LD accumulation in microglia and altered the expression of lipolysis regulators. The pan-lipase inhibitor ORlistat alleviated LPS-induced expression of IL-1{beta} and IL-6. Specific inhibition of ATGL by ATGListatin had similar anti-inflammatory action on cytokines expression and secretion in both neonatal and adult microglia cultures. Second, targeted and untargeted lipidomic studies revealed that ATGL inhibition reduced LPS-induced generation of pro-inflammatory prostanoids and affected ceramide profile. Finally, the role of ATGL in neuroinflammation was assessed in a novel mouse model with inducible ATGL deletion specifically in microglia. Loss of microglial ATGL in adult male mice dampened LPS-induced expression of IL-6 and reduced LPS-induced sickness behaviour. Together, our results demonstrate that pharmacological inhibition or loss of ATGL-mediated triglyceride lipolysis reduces LPS-induced inflammation to suggest that inhibition of lipolysis plays a beneficial role in neuroinflammation.

neuroscience↗