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1.
Cell ; 182(6): 1589-1605.e22, 2020 09 17.
Artigo em Inglês | MEDLINE | ID: mdl-32841600

RESUMO

Hunger and thirst have distinct goals but control similar ingestive behaviors, and little is known about neural processes that are shared between these behavioral states. We identify glutamatergic neurons in the peri-locus coeruleus (periLCVGLUT2 neurons) as a polysynaptic convergence node from separate energy-sensitive and hydration-sensitive cell populations. We develop methods for stable hindbrain calcium imaging in free-moving mice, which show that periLCVGLUT2 neurons are tuned to ingestive behaviors and respond similarly to food or water consumption. PeriLCVGLUT2 neurons are scalably inhibited by palatability and homeostatic need during consumption. Inhibition of periLCVGLUT2 neurons is rewarding and increases consumption by enhancing palatability and prolonging ingestion duration. These properties comprise a double-negative feedback relationship that sustains food or water consumption without affecting food- or water-seeking. PeriLCVGLUT2 neurons are a hub between hunger and thirst that specifically controls motivation for food and water ingestion, which is a factor that contributes to hedonic overeating and obesity.


Assuntos
Regulação do Apetite/fisiologia , Ingestão de Líquidos/fisiologia , Ingestão de Alimentos/fisiologia , Locus Cerúleo/citologia , Rede Nervosa/fisiologia , Neurônios/fisiologia , Rombencéfalo/fisiologia , Análise de Célula Única/métodos , Animais , Apetite/fisiologia , Escala de Avaliação Comportamental , Retroalimentação , Comportamento Alimentar/fisiologia , Feminino , Glutamina/metabolismo , Glutamina/fisiologia , Homeostase/fisiologia , Fome/fisiologia , Masculino , Camundongos , Camundongos Knockout , Motivação/fisiologia , Neurônios/efeitos dos fármacos , Proteínas Recombinantes , Recompensa , Rombencéfalo/citologia , Rombencéfalo/diagnóstico por imagem , Paladar/fisiologia , Sede/fisiologia
2.
Cell ; 178(4): 901-918.e16, 2019 08 08.
Artigo em Inglês | MEDLINE | ID: mdl-31398343

RESUMO

Physiology and metabolism are often sexually dimorphic, but the underlying mechanisms remain incompletely understood. Here, we use the intestine of Drosophila melanogaster to investigate how gut-derived signals contribute to sex differences in whole-body physiology. We find that carbohydrate handling is male-biased in a specific portion of the intestine. In contrast to known sexual dimorphisms in invertebrates, the sex differences in intestinal carbohydrate metabolism are extrinsically controlled by the adjacent male gonad, which activates JAK-STAT signaling in enterocytes within this intestinal portion. Sex reversal experiments establish roles for this male-biased intestinal metabolic state in controlling food intake and sperm production through gut-derived citrate. Our work uncovers a male gonad-gut axis coupling diet and sperm production, revealing that metabolic communication across organs is physiologically important. The instructive role of citrate in inter-organ communication might be significant in more biological contexts than previously recognized.


Assuntos
Metabolismo dos Carboidratos/fisiologia , Drosophila melanogaster/metabolismo , Ingestão de Alimentos/fisiologia , Mucosa Intestinal/metabolismo , Caracteres Sexuais , Maturação do Esperma/fisiologia , Animais , Ácido Cítrico/metabolismo , Proteínas de Drosophila/metabolismo , Feminino , Expressão Gênica , Janus Quinases/metabolismo , Masculino , RNA-Seq , Fatores de Transcrição STAT/metabolismo , Transdução de Sinais , Açúcares/metabolismo , Testículo/metabolismo
3.
Cell ; 178(1): 44-59.e7, 2019 06 27.
Artigo em Inglês | MEDLINE | ID: mdl-31104844

RESUMO

Hypothalamic Agrp neurons regulate food ingestion in adult mice. Whether these neurons are functional before animals start to ingest food is unknown. Here, we studied the functional ontogeny of Agrp neurons during breastfeeding using postnatal day 10 mice. In contrast to adult mice, we show that isolation from the nursing nest, not milk deprivation or ingestion, activated Agrp neurons. Non-nutritive suckling and warm temperatures blunted this effect. Using in vivo fiber photometry, neonatal Agrp neurons showed a rapid increase in activity upon isolation from the nest, an effect rapidly diminished following reunion with littermates. Neonates unable to release GABA from Agrp neurons expressed blunted emission of isolation-induced ultrasonic vocalizations. Chemogenetic overactivation of these neurons further increased emission of these ultrasonic vocalizations, but not milk ingestion. We uncovered important functional properties of hypothalamic Agrp neurons during mouse development, suggesting these neurons facilitate offspring-to-caregiver bonding.


Assuntos
Proteína Relacionada com Agouti/metabolismo , Comportamento Alimentar/fisiologia , Hipotálamo/citologia , Neurônios/metabolismo , Proteína Relacionada com Agouti/genética , Animais , Animais Recém-Nascidos , Ingestão de Alimentos/fisiologia , Comportamento Materno/fisiologia , Camundongos , Camundongos Knockout , Leite , Proteínas Proto-Oncogênicas c-fos/metabolismo , Isolamento Social , Comportamento de Sucção/fisiologia , Temperatura , Vocalização Animal/fisiologia , Ácido gama-Aminobutírico/metabolismo
4.
Nature ; 633(8028): 182-188, 2024 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-39112712

RESUMO

Taurine is a conditionally essential micronutrient and one of the most abundant amino acids in humans1-3. In endogenous taurine metabolism, dedicated enzymes are involved in the biosynthesis of taurine from cysteine and in the downstream metabolism of secondary taurine metabolites4,5. One taurine metabolite is N-acetyltaurine6. Levels of N-acetyltaurine are dynamically regulated by stimuli that alter taurine or acetate flux, including endurance exercise7, dietary taurine supplementation8 and alcohol consumption6,9. So far, the identities of the enzymes involved in N-acetyltaurine metabolism, and the potential functions of N-acetyltaurine itself, have remained unknown. Here we show that the body mass index associated orphan enzyme phosphotriesterase-related (PTER)10 is a physiological N-acetyltaurine hydrolase. In vitro, PTER catalyses the hydrolysis of N-acetyltaurine to taurine and acetate. In mice, PTER is expressed in the kidney, liver and brainstem. Genetic ablation of Pter in mice results in complete loss of tissue N-acetyltaurine hydrolysis activity and a systemic increase in N-acetyltaurine levels. After stimuli that increase taurine levels, Pter knockout mice exhibit reduced food intake, resistance to diet-induced obesity and improved glucose homeostasis. Administration of N-acetyltaurine to obese wild-type mice also reduces food intake and body weight in a GFRAL-dependent manner. These data place PTER into a central enzymatic node of secondary taurine metabolism and uncover a role for PTER and N-acetyltaurine in body weight control and energy balance.


Assuntos
Peso Corporal , Ingestão de Alimentos , Hidrolases , Obesidade , Taurina , Animais , Feminino , Humanos , Masculino , Camundongos , Ingestão de Alimentos/fisiologia , Glucose/metabolismo , Homeostase , Hidrolases/deficiência , Hidrolases/genética , Hidrolases/metabolismo , Hidrólise , Rim/metabolismo , Fígado/metabolismo , Fígado/enzimologia , Camundongos Endogâmicos C57BL , Camundongos Knockout , Obesidade/metabolismo , Obesidade/enzimologia , Taurina/metabolismo , Taurina/análogos & derivados , Proteínas de Transporte/genética , Proteínas de Transporte/metabolismo , Ácido Acético/metabolismo , Exercício Físico , Índice de Massa Corporal , Redução de Peso , Metabolismo Secundário , Metabolismo Energético , Tronco Encefálico/metabolismo
5.
Nature ; 628(8009): 826-834, 2024 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-38538787

RESUMO

Empirical evidence suggests that heat exposure reduces food intake. However, the neurocircuit architecture and the signalling mechanisms that form an associative interface between sensory and metabolic modalities remain unknown, despite primary thermoceptive neurons in the pontine parabrachial nucleus becoming well characterized1. Tanycytes are a specialized cell type along the wall of the third ventricle2 that bidirectionally transport hormones and signalling molecules between the brain's parenchyma and ventricular system3-8. Here we show that tanycytes are activated upon acute thermal challenge and are necessary to reduce food intake afterwards. Virus-mediated gene manipulation and circuit mapping showed that thermosensing glutamatergic neurons of the parabrachial nucleus innervate tanycytes either directly or through second-order hypothalamic neurons. Heat-dependent Fos expression in tanycytes suggested their ability to produce signalling molecules, including vascular endothelial growth factor A (VEGFA). Instead of discharging VEGFA into the cerebrospinal fluid for a systemic effect, VEGFA was released along the parenchymal processes of tanycytes in the arcuate nucleus. VEGFA then increased the spike threshold of Flt1-expressing dopamine and agouti-related peptide (Agrp)-containing neurons, thus priming net anorexigenic output. Indeed, both acute heat and the chemogenetic activation of glutamatergic parabrachial neurons at thermoneutrality reduced food intake for hours, in a manner that is sensitive to both Vegfa loss-of-function and blockage of vesicle-associated membrane protein 2 (VAMP2)-dependent exocytosis from tanycytes. Overall, we define a multimodal neurocircuit in which tanycytes link parabrachial sensory relay to the long-term enforcement of a metabolic code.


Assuntos
Tronco Encefálico , Células Ependimogliais , Comportamento Alimentar , Temperatura Alta , Hipotálamo , Vias Neurais , Neurônios , Animais , Feminino , Masculino , Camundongos , Proteína Relacionada com Agouti/metabolismo , Núcleo Arqueado do Hipotálamo/metabolismo , Núcleo Arqueado do Hipotálamo/citologia , Tronco Encefálico/citologia , Tronco Encefálico/fisiologia , Dopamina/metabolismo , Ingestão de Alimentos/fisiologia , Células Ependimogliais/citologia , Células Ependimogliais/fisiologia , Comportamento Alimentar/fisiologia , Ácido Glutâmico/metabolismo , Hipotálamo/citologia , Hipotálamo/fisiologia , Vias Neurais/metabolismo , Neurônios/metabolismo , Núcleos Parabraquiais/citologia , Núcleos Parabraquiais/metabolismo , Núcleos Parabraquiais/fisiologia , Sensação Térmica/fisiologia , Fatores de Tempo , Fator A de Crescimento do Endotélio Vascular/líquido cefalorraquidiano , Fator A de Crescimento do Endotélio Vascular/metabolismo
6.
Nature ; 632(8025): 585-593, 2024 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-38987598

RESUMO

The most successful obesity therapeutics, glucagon-like peptide-1 receptor (GLP1R) agonists, cause aversive responses such as nausea and vomiting1,2, effects that may contribute to their efficacy. Here, we investigated the brain circuits that link satiety to aversion, and unexpectedly discovered that the neural circuits mediating these effects are functionally separable. Systematic investigation across drug-accessible GLP1R populations revealed that only hindbrain neurons are required for the efficacy of GLP1-based obesity drugs. In vivo two-photon imaging of hindbrain GLP1R neurons demonstrated that most neurons are tuned to either nutritive or aversive stimuli, but not both. Furthermore, simultaneous imaging of hindbrain subregions indicated that area postrema (AP) GLP1R neurons are broadly responsive, whereas nucleus of the solitary tract (NTS) GLP1R neurons are biased towards nutritive stimuli. Strikingly, separate manipulation of these populations demonstrated that activation of NTSGLP1R neurons triggers satiety in the absence of aversion, whereas activation of APGLP1R neurons triggers strong aversion with food intake reduction. Anatomical and behavioural analyses revealed that NTSGLP1R and APGLP1R neurons send projections to different downstream brain regions to drive satiety and aversion, respectively. Importantly, GLP1R agonists reduce food intake even when the aversion pathway is inhibited. Overall, these findings highlight NTSGLP1R neurons as a population that could be selectively targeted to promote weight loss while avoiding the adverse side effects that limit treatment adherence.


Assuntos
Fármacos Antiobesidade , Aprendizagem da Esquiva , Receptor do Peptídeo Semelhante ao Glucagon 1 , Vias Neurais , Rombencéfalo , Resposta de Saciedade , Animais , Feminino , Masculino , Camundongos , Fármacos Antiobesidade/efeitos adversos , Fármacos Antiobesidade/farmacologia , Área Postrema/metabolismo , Área Postrema/efeitos dos fármacos , Aprendizagem da Esquiva/efeitos dos fármacos , Aprendizagem da Esquiva/fisiologia , Ingestão de Alimentos/efeitos dos fármacos , Ingestão de Alimentos/fisiologia , Peptídeo 1 Semelhante ao Glucagon/metabolismo , Receptor do Peptídeo Semelhante ao Glucagon 1/agonistas , Receptor do Peptídeo Semelhante ao Glucagon 1/metabolismo , Camundongos Endogâmicos C57BL , Vias Neurais/efeitos dos fármacos , Neurônios/metabolismo , Neurônios/fisiologia , Neurônios/efeitos dos fármacos , Obesidade/metabolismo , Rombencéfalo/citologia , Rombencéfalo/efeitos dos fármacos , Rombencéfalo/metabolismo , Rombencéfalo/fisiologia , Resposta de Saciedade/efeitos dos fármacos , Resposta de Saciedade/fisiologia , Núcleo Solitário/citologia , Núcleo Solitário/efeitos dos fármacos , Núcleo Solitário/metabolismo , Núcleo Solitário/fisiologia , Alimentos
7.
Physiol Rev ; 102(2): 689-813, 2022 04 01.
Artigo em Inglês | MEDLINE | ID: mdl-34486393

RESUMO

During the past 30 yr, investigating the physiology of eating behaviors has generated a truly vast literature. This is fueled in part by a dramatic increase in obesity and its comorbidities that has coincided with an ever increasing sophistication of genetically based manipulations. These techniques have produced results with a remarkable degree of cell specificity, particularly at the cell signaling level, and have played a lead role in advancing the field. However, putting these findings into a brain-wide context that connects physiological signals and neurons to behavior and somatic physiology requires a thorough consideration of neuronal connections: a field that has also seen an extraordinary technological revolution. Our goal is to present a comprehensive and balanced assessment of how physiological signals associated with energy homeostasis interact at many brain levels to control eating behaviors. A major theme is that these signals engage sets of interacting neural networks throughout the brain that are defined by specific neural connections. We begin by discussing some fundamental concepts, including ones that still engender vigorous debate, that provide the necessary frameworks for understanding how the brain controls meal initiation and termination. These include key word definitions, ATP availability as the pivotal regulated variable in energy homeostasis, neuropeptide signaling, homeostatic and hedonic eating, and meal structure. Within this context, we discuss network models of how key regions in the endbrain (or telencephalon), hypothalamus, hindbrain, medulla, vagus nerve, and spinal cord work together with the gastrointestinal tract to enable the complex motor events that permit animals to eat in diverse situations.


Assuntos
Ingestão de Alimentos/fisiologia , Comportamento Alimentar/fisiologia , Hipotálamo/fisiologia , Neurônios/fisiologia , Animais , Homeostase/fisiologia , Humanos , Transdução de Sinais/fisiologia
8.
Nature ; 624(7990): 130-137, 2023 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-37993711

RESUMO

The termination of a meal is controlled by dedicated neural circuits in the caudal brainstem. A key challenge is to understand how these circuits transform the sensory signals generated during feeding into dynamic control of behaviour. The caudal nucleus of the solitary tract (cNTS) is the first site in the brain where many meal-related signals are sensed and integrated1-4, but how the cNTS processes ingestive feedback during behaviour is unknown. Here we describe how prolactin-releasing hormone (PRLH) and GCG neurons, two principal cNTS cell types that promote non-aversive satiety, are regulated during ingestion. PRLH neurons showed sustained activation by visceral feedback when nutrients were infused into the stomach, but these sustained responses were substantially reduced during oral consumption. Instead, PRLH neurons shifted to a phasic activity pattern that was time-locked to ingestion and linked to the taste of food. Optogenetic manipulations revealed that PRLH neurons control the duration of seconds-timescale feeding bursts, revealing a mechanism by which orosensory signals feed back to restrain the pace of ingestion. By contrast, GCG neurons were activated by mechanical feedback from the gut, tracked the amount of food consumed and promoted satiety that lasted for tens of minutes. These findings reveal that sequential negative feedback signals from the mouth and gut engage distinct circuits in the caudal brainstem, which in turn control elements of feeding behaviour operating on short and long timescales.


Assuntos
Regulação do Apetite , Tronco Encefálico , Ingestão de Alimentos , Retroalimentação Fisiológica , Alimentos , Saciação , Estômago , Regulação do Apetite/fisiologia , Tronco Encefálico/citologia , Tronco Encefálico/fisiologia , Ingestão de Alimentos/fisiologia , Vias Neurais/citologia , Vias Neurais/fisiologia , Neurônios/metabolismo , Hormônio Liberador de Prolactina/metabolismo , Saciação/fisiologia , Núcleo Solitário/citologia , Núcleo Solitário/fisiologia , Estômago/fisiologia , Paladar/fisiologia , Fatores de Tempo , Animais , Camundongos
9.
Nature ; 606(7915): 785-790, 2022 06.
Artigo em Inglês | MEDLINE | ID: mdl-35705806

RESUMO

Exercise confers protection against obesity, type 2 diabetes and other cardiometabolic diseases1-5. However, the molecular and cellular mechanisms that mediate the metabolic benefits of physical activity remain unclear6. Here we show that exercise stimulates the production of N-lactoyl-phenylalanine (Lac-Phe), a blood-borne signalling metabolite that suppresses feeding and obesity. The biosynthesis of Lac-Phe from lactate and phenylalanine occurs in CNDP2+ cells, including macrophages, monocytes and other immune and epithelial cells localized to diverse organs. In diet-induced obese mice, pharmacological-mediated increases in Lac-Phe reduces food intake without affecting movement or energy expenditure. Chronic administration of Lac-Phe decreases adiposity and body weight and improves glucose homeostasis. Conversely, genetic ablation of Lac-Phe biosynthesis in mice increases food intake and obesity following exercise training. Last, large activity-inducible increases in circulating Lac-Phe are also observed in humans and racehorses, establishing this metabolite as a molecular effector associated with physical activity across multiple activity modalities and mammalian species. These data define a conserved exercise-inducible metabolite that controls food intake and influences systemic energy balance.


Assuntos
Ingestão de Alimentos , Comportamento Alimentar , Obesidade , Fenilalanina , Condicionamento Físico Animal , Adiposidade/efeitos dos fármacos , Animais , Peso Corporal/efeitos dos fármacos , Diabetes Mellitus Tipo 2 , Modelos Animais de Doenças , Ingestão de Alimentos/fisiologia , Metabolismo Energético , Comportamento Alimentar/fisiologia , Glucose/metabolismo , Ácido Láctico/metabolismo , Camundongos , Obesidade/metabolismo , Obesidade/prevenção & controle , Fenilalanina/administração & dosagem , Fenilalanina/análogos & derivados , Fenilalanina/metabolismo , Fenilalanina/farmacologia , Condicionamento Físico Animal/fisiologia
10.
Nature ; 600(7888): 269-273, 2021 12.
Artigo em Inglês | MEDLINE | ID: mdl-34789878

RESUMO

The brain is the seat of body weight homeostasis. However, our inability to control the increasing prevalence of obesity highlights a need to look beyond canonical feeding pathways to broaden our understanding of body weight control1-3. Here we used a reverse-translational approach to identify and anatomically, molecularly and functionally characterize a neural ensemble that promotes satiation. Unbiased, task-based functional magnetic resonance imaging revealed marked differences in cerebellar responses to food in people with a genetic disorder characterized by insatiable appetite. Transcriptomic analyses in mice revealed molecularly and topographically -distinct neurons in the anterior deep cerebellar nuclei (aDCN) that are activated by feeding or nutrient infusion in the gut. Selective activation of aDCN neurons substantially decreased food intake by reducing meal size without compensatory changes to metabolic rate. We found that aDCN activity terminates food intake by increasing striatal dopamine levels and attenuating the phasic dopamine response to subsequent food consumption. Our study defines a conserved satiation centre that may represent a novel therapeutic target for the management of excessive eating, and underscores the utility of a 'bedside-to-bench' approach for the identification of neural circuits that influence behaviour.


Assuntos
Manutenção do Peso Corporal/genética , Manutenção do Peso Corporal/fisiologia , Cerebelo/fisiologia , Alimentos , Biossíntese de Proteínas , Genética Reversa , Resposta de Saciedade/fisiologia , Adulto , Animais , Regulação do Apetite/genética , Regulação do Apetite/fisiologia , Núcleos Cerebelares/citologia , Núcleos Cerebelares/fisiologia , Cerebelo/citologia , Sinais (Psicologia) , Dopamina/metabolismo , Ingestão de Alimentos/genética , Ingestão de Alimentos/fisiologia , Comportamento Alimentar/fisiologia , Feminino , Homeostase , Humanos , Imageamento por Ressonância Magnética , Masculino , Camundongos , Camundongos Endogâmicos C57BL , Neostriado/metabolismo , Neurônios/fisiologia , Obesidade/genética , Filosofia , Adulto Jovem
11.
Proc Natl Acad Sci U S A ; 121(18): e2322692121, 2024 Apr 30.
Artigo em Inglês | MEDLINE | ID: mdl-38652744

RESUMO

Food intake and energy balance are tightly regulated by a group of hypothalamic arcuate neurons expressing the proopiomelanocortin (POMC) gene. In mammals, arcuate-specific POMC expression is driven by two cis-acting transcriptional enhancers known as nPE1 and nPE2. Because mutant mice lacking these two enhancers still showed hypothalamic Pomc mRNA, we searched for additional elements contributing to arcuate Pomc expression. By combining molecular evolution with reporter gene expression in transgenic zebrafish and mice, here, we identified a mammalian arcuate-specific Pomc enhancer that we named nPE3, carrying several binding sites also present in nPE1 and nPE2 for transcription factors known to activate neuronal Pomc expression, such as ISL1, NKX2.1, and ERα. We found that nPE3 originated in the lineage leading to placental mammals and remained under purifying selection in all mammalian orders, although it was lost in Simiiformes (monkeys, apes, and humans) following a unique segmental deletion event. Interestingly, ablation of nPE3 from the mouse genome led to a drastic reduction (>70%) in hypothalamic Pomc mRNA during development and only moderate (<33%) in adult mice. Comparison between double (nPE1 and nPE2) and triple (nPE1, nPE2, and nPE3) enhancer mutants revealed the relative contribution of nPE3 to hypothalamic Pomc expression and its importance in the control of food intake and adiposity in male and female mice. Altogether, these results demonstrate that nPE3 integrates a tripartite cluster of partially redundant enhancers that originated upon a triple convergent evolutionary process in mammals and that is critical for hypothalamic Pomc expression and body weight homeostasis.


Assuntos
Peso Corporal , Ingestão de Alimentos , Elementos Facilitadores Genéticos , Hipotálamo , Pró-Opiomelanocortina , Peixe-Zebra , Animais , Pró-Opiomelanocortina/metabolismo , Pró-Opiomelanocortina/genética , Camundongos , Hipotálamo/metabolismo , Ingestão de Alimentos/genética , Ingestão de Alimentos/fisiologia , Peixe-Zebra/genética , Peixe-Zebra/metabolismo , Feminino , Masculino , Camundongos Transgênicos , Humanos , Fatores de Transcrição/metabolismo , Fatores de Transcrição/genética , Mamíferos/metabolismo , Mamíferos/genética
12.
Nature ; 587(7834): 455-459, 2020 11.
Artigo em Inglês | MEDLINE | ID: mdl-33116314

RESUMO

Reproduction induces increased food intake across females of many animal species1-4, providing a physiologically relevant paradigm for the exploration of appetite regulation. Here, by examining the diversity of enteric neurons in Drosophila melanogaster, we identify a key role for gut-innervating neurons with sex- and reproductive state-specific activity in sustaining the increased food intake of mothers during reproduction. Steroid and enteroendocrine hormones functionally remodel these neurons, which leads to the release of their neuropeptide onto the muscles of the crop-a stomach-like organ-after mating. Neuropeptide release changes the dynamics of crop enlargement, resulting in increased food intake, and preventing the post-mating remodelling of enteric neurons reduces both reproductive hyperphagia and reproductive fitness. The plasticity of enteric neurons is therefore key to reproductive success. Our findings provide a mechanism to attain the positive energy balance that sustains gestation, dysregulation of which could contribute to infertility or weight gain.


Assuntos
Drosophila melanogaster/citologia , Drosophila melanogaster/fisiologia , Ingestão de Alimentos/fisiologia , Ingestão de Energia/fisiologia , Mães , Neurônios/metabolismo , Reprodução/fisiologia , Estruturas Animais/citologia , Estruturas Animais/inervação , Estruturas Animais/metabolismo , Animais , Regulação do Apetite/fisiologia , Feminino , Hiperfagia/metabolismo , Masculino , Neuropeptídeos/metabolismo
13.
Nature ; 580(7802): 263-268, 2020 04.
Artigo em Inglês | MEDLINE | ID: mdl-32269334

RESUMO

In cells, organs and whole organisms, nutrient sensing is key to maintaining homeostasis and adapting to a fluctuating environment1. In many animals, nutrient sensors are found within the enteroendocrine cells of the digestive system; however, less is known about nutrient sensing in their cellular siblings, the absorptive enterocytes1. Here we use a genetic screen in Drosophila melanogaster to identify Hodor, an ionotropic receptor in enterocytes that sustains larval development, particularly in nutrient-scarce conditions. Experiments in Xenopus oocytes and flies indicate that Hodor is a pH-sensitive, zinc-gated chloride channel that mediates a previously unrecognized dietary preference for zinc. Hodor controls systemic growth from a subset of enterocytes-interstitial cells-by promoting food intake and insulin/IGF signalling. Although Hodor sustains gut luminal acidity and restrains microbial loads, its effect on systemic growth results from the modulation of Tor signalling and lysosomal homeostasis within interstitial cells. Hodor-like genes are insect-specific, and may represent targets for the control of disease vectors. Indeed, CRISPR-Cas9 genome editing revealed that the single hodor orthologue in Anopheles gambiae is an essential gene. Our findings highlight the need to consider the instructive contributions of metals-and, more generally, micronutrients-to energy homeostasis.


Assuntos
Canais de Cloreto/metabolismo , Proteínas de Drosophila/metabolismo , Drosophila melanogaster/crescimento & desenvolvimento , Drosophila melanogaster/metabolismo , Ingestão de Alimentos/fisiologia , Intestinos/fisiologia , Zinco/metabolismo , Animais , Drosophila melanogaster/genética , Enterócitos/metabolismo , Feminino , Preferências Alimentares , Homeostase , Insetos Vetores , Insulina/metabolismo , Ativação do Canal Iônico , Larva/genética , Larva/crescimento & desenvolvimento , Larva/metabolismo , Lisossomos/metabolismo , Masculino , Oócitos/metabolismo , Receptores Proteína Tirosina Quinases/metabolismo , Transdução de Sinais , Xenopus
14.
Nature ; 579(7800): 575-580, 2020 03.
Artigo em Inglês | MEDLINE | ID: mdl-32050257

RESUMO

The intestinal mucosa serves both as a conduit for the uptake of food-derived nutrients and microbiome-derived metabolites, and as a barrier that prevents tissue invasion by microorganisms and tempers inflammatory responses to the myriad contents of the lumen. How the intestine coordinates physiological and immune responses to food consumption to optimize nutrient uptake while maintaining barrier functions remains unclear. Here we show in mice how a gut neuronal signal triggered by food intake is integrated with intestinal antimicrobial and metabolic responses that are controlled by type-3 innate lymphoid cells (ILC3)1-3. Food consumption rapidly activates a population of enteric neurons that express vasoactive intestinal peptide (VIP)4. Projections of VIP-producing neurons (VIPergic neurons) in the lamina propria are in close proximity to clusters of ILC3 that selectively express VIP receptor type 2 (VIPR2; also known as VPAC2). Production of interleukin (IL)-22 by ILC3, which is upregulated by the presence of commensal microorganisms such as segmented filamentous bacteria5-7, is inhibited upon engagement of VIPR2. As a consequence, levels of antimicrobial peptide derived from epithelial cells are reduced but the expression of lipid-binding proteins and transporters is increased8. During food consumption, the activation of VIPergic neurons thus enhances the growth of segmented filamentous bacteria associated with the epithelium, and increases lipid absorption. Our results reveal a feeding- and circadian-regulated dynamic neuroimmune circuit in the intestine that promotes a trade-off between innate immune protection mediated by IL-22 and the efficiency of nutrient absorption. Modulation of this pathway may therefore be effective for enhancing resistance to enteropathogens2,3,9 and for the treatment of metabolic diseases.


Assuntos
Ingestão de Alimentos/fisiologia , Imunidade Inata/imunologia , Absorção Intestinal/fisiologia , Intestinos/imunologia , Intestinos/fisiologia , Linfócitos/imunologia , Neurônios/metabolismo , Peptídeo Intestinal Vasoativo/metabolismo , Animais , Ritmo Circadiano/fisiologia , Ingestão de Alimentos/imunologia , Feminino , Interleucinas/biossíntese , Interleucinas/imunologia , Absorção Intestinal/imunologia , Intestinos/citologia , Intestinos/microbiologia , Linfócitos/metabolismo , Masculino , Camundongos , Camundongos Endogâmicos C57BL , Período Pós-Prandial/fisiologia , Receptores CCR6/metabolismo , Receptores Tipo II de Peptídeo Intestinal Vasoativo/metabolismo , Simbiose , Interleucina 22
15.
Nature ; 588(7838): 479-484, 2020 12.
Artigo em Inglês | MEDLINE | ID: mdl-33177714

RESUMO

Cholesterol is an essential lipid and its synthesis is nutritionally and energetically costly1,2. In mammals, cholesterol biosynthesis increases after feeding and is inhibited under fasting conditions3. However, the regulatory mechanisms of cholesterol biosynthesis at the fasting-feeding transition remain poorly understood. Here we show that the deubiquitylase ubiquitin-specific peptidase 20 (USP20) stabilizes HMG-CoA reductase (HMGCR), the rate-limiting enzyme in the cholesterol biosynthetic pathway, in the feeding state. The post-prandial increase in insulin and glucose concentration stimulates mTORC1 to phosphorylate USP20 at S132 and S134; USP20 is recruited to the HMGCR complex and antagonizes its degradation. The feeding-induced stabilization of HMGCR is abolished in mice with liver-specific Usp20 deletion and in USP20(S132A/S134A) knock-in mice. Genetic deletion or pharmacological inhibition of USP20 markedly decreases diet-induced body weight gain, reduces lipid levels in the serum and liver, improves insulin sensitivity and increases energy expenditure. These metabolic changes are reversed by expression of the constitutively stable HMGCR(K248R). This study reveals an unexpected regulatory axis from mTORC1 to HMGCR via USP20 phosphorylation and suggests that inhibitors of USP20 could be used to lower cholesterol levels to treat metabolic diseases including hyperlipidaemia, liver steatosis, obesity and diabetes.


Assuntos
Colesterol/biossíntese , Ingestão de Alimentos/fisiologia , Hidroximetilglutaril-CoA Redutases/metabolismo , Alvo Mecanístico do Complexo 1 de Rapamicina/metabolismo , Ubiquitina Tiolesterase/metabolismo , Animais , Linhagem Celular , Glucose/metabolismo , Humanos , Insulina/metabolismo , Fígado/metabolismo , Masculino , Doenças Metabólicas/genética , Doenças Metabólicas/metabolismo , Metabolismo/genética , Camundongos , Camundongos Endogâmicos C57BL , Fosforilação , Fosfosserina/metabolismo , Ubiquitina Tiolesterase/antagonistas & inibidores , Ubiquitina Tiolesterase/química , Ubiquitina Tiolesterase/deficiência , Ubiquitinação , Aumento de Peso
16.
Nature ; 581(7807): 194-198, 2020 05.
Artigo em Inglês | MEDLINE | ID: mdl-32404998

RESUMO

Daily changes in light and food availability are major time cues that influence circadian timing1. However, little is known about the circuits that integrate these time cues to drive a coherent circadian output1-3. Here we investigate whether retinal inputs modulate entrainment to nonphotic cues such as time-restricted feeding. Photic information is relayed to the suprachiasmatic nucleus (SCN)-the central circadian pacemaker-and the intergeniculate leaflet (IGL) through intrinsically photosensitive retinal ganglion cells (ipRGCs)4. We show that adult mice that lack ipRGCs from the early postnatal stages have impaired entrainment to time-restricted feeding, whereas ablation of ipRGCs at later stages had no effect. Innervation of ipRGCs at early postnatal stages influences IGL neurons that express neuropeptide Y (NPY) (hereafter, IGLNPY neurons), guiding the assembly of a functional IGLNPY-SCN circuit. Moreover, silencing IGLNPY neurons in adult mice mimicked the deficits that were induced by ablation of ipRGCs in the early postnatal stages, and acute inhibition of IGLNPY terminals in the SCN decreased food-anticipatory activity. Thus, innervation of ipRGCs in the early postnatal period tunes the IGLNPY-SCN circuit to allow entrainment to time-restricted feeding.


Assuntos
Ritmo Circadiano/fisiologia , Comportamento Alimentar/fisiologia , Luz , Vias Neurais , Retina/fisiologia , Animais , Axônios/fisiologia , Axônios/efeitos da radiação , Ritmo Circadiano/efeitos da radiação , Sinais (Psicologia) , Ingestão de Alimentos/fisiologia , Ingestão de Alimentos/efeitos da radiação , Comportamento Alimentar/efeitos da radiação , Feminino , Corpos Geniculados/citologia , Corpos Geniculados/fisiologia , Corpos Geniculados/efeitos da radiação , Masculino , Camundongos , Vias Neurais/efeitos da radiação , Neuropeptídeo Y/metabolismo , Retina/citologia , Retina/efeitos da radiação , Células Ganglionares da Retina/fisiologia , Células Ganglionares da Retina/efeitos da radiação , Transdução de Sinais/efeitos da radiação , Núcleo Supraquiasmático/citologia , Núcleo Supraquiasmático/fisiologia , Núcleo Supraquiasmático/efeitos da radiação , Fatores de Tempo
17.
J Neurosci ; 44(30)2024 Jul 24.
Artigo em Inglês | MEDLINE | ID: mdl-38897723

RESUMO

Light plays an essential role in a variety of physiological processes, including vision, mood, and glucose homeostasis. However, the intricate relationship between light and an animal's feeding behavior has remained elusive. Here, we found that light exposure suppresses food intake, whereas darkness amplifies it in male mice. Interestingly, this phenomenon extends its reach to diurnal male Nile grass rats and healthy humans. We further show that lateral habenula (LHb) neurons in mice respond to light exposure, which in turn activates 5-HT neurons in the dorsal Raphe nucleus (DRN). Activation of the LHb→5-HTDRN circuit in mice blunts darkness-induced hyperphagia, while inhibition of the circuit prevents light-induced anorexia. Together, we discovered a light-responsive neural circuit that relays the environmental light signals to regulate feeding behavior in mice.


Assuntos
Comportamento Alimentar , Habenula , Luz , Animais , Masculino , Camundongos , Habenula/fisiologia , Comportamento Alimentar/fisiologia , Núcleo Dorsal da Rafe/fisiologia , Humanos , Camundongos Endogâmicos C57BL , Ingestão de Alimentos/fisiologia , Vias Neurais/fisiologia , Ratos , Neurônios Serotoninérgicos/fisiologia , Rede Nervosa/fisiologia , Escuridão
18.
J Neurosci ; 44(19)2024 May 08.
Artigo em Inglês | MEDLINE | ID: mdl-38531632

RESUMO

BMAL2 (ARNTL2) is a paralog of BMAL1 that can form heterodimers with the other circadian factors CLOCK and NPAS2 to activate transcription of clock and clock-controlled genes. To assess a possible role of Bmal2 in the circadian regulation of metabolism, we investigated daily variations of energy metabolism, feeding behavior, and locomotor behavior, as well as ability to anticipate restricted food access in male mice knock-out for Bmal2 (B2KO). While their amount of food intake and locomotor activity were normal compared with wild-type mice, B2KO mice displayed increased adiposity (1.5-fold higher) and fasted hyperinsulinemia (fourfold higher) and tended to have lower energy expenditure at night. Impairment of the master clock in the suprachiasmatic nuclei was evidenced by the shorter free-running period (-14 min/cycle) of B2KO mice compared with wild-type controls and by a loss of daily rhythmicity in expression of intracellular metabolic regulators (e.g., Lipoprotein lipase and Uncoupling protein 2). The circadian window of eating was longer in B2KO mice. The circadian patterns of food intake and meal numbers were bimodal in control mice but not in B2KO mice. In response to restricted feeding, food-anticipatory activity was almost prevented in B2KO mice, suggesting altered food clock that controls anticipation of food availability. In the mediobasal hypothalamus of B2KO mice, expression of genes coding orexigenic neuropeptides (including Neuropeptide y and Agouti-Related Peptide) was downregulated, while Lipoprotein lipase expression lost its rhythmicity. Together, these data highlight that BMAL2 has major impacts on brain regulation of metabolic rhythms, sleep-wake cycle, and food anticipation.


Assuntos
Fatores de Transcrição ARNTL , Ritmo Circadiano , Metabolismo Energético , Comportamento Alimentar , Hipotálamo , Camundongos Knockout , Animais , Camundongos , Metabolismo Energético/fisiologia , Metabolismo Energético/genética , Fatores de Transcrição ARNTL/genética , Fatores de Transcrição ARNTL/metabolismo , Masculino , Comportamento Alimentar/fisiologia , Ritmo Circadiano/fisiologia , Ritmo Circadiano/genética , Hipotálamo/metabolismo , Camundongos Endogâmicos C57BL , Atividade Motora/fisiologia , Atividade Motora/genética , Ingestão de Alimentos/genética , Ingestão de Alimentos/fisiologia
19.
J Neurosci ; 44(20)2024 May 15.
Artigo em Inglês | MEDLINE | ID: mdl-38594069

RESUMO

The brain bidirectionally communicates with the gut to control food intake and energy balance, which becomes dysregulated in obesity. For example, endocannabinoid (eCB) signaling in the small-intestinal (SI) epithelium is upregulated in diet-induced obese (DIO) mice and promotes overeating by a mechanism that includes inhibiting gut-brain satiation signaling. Upstream neural and molecular mechanism(s) involved in overproduction of orexigenic gut eCBs in DIO, however, are unknown. We tested the hypothesis that overactive parasympathetic signaling at the muscarinic acetylcholine receptors (mAChRs) in the SI increases biosynthesis of the eCB, 2-arachidonoyl-sn-glycerol (2-AG), which drives hyperphagia via local CB1Rs in DIO. Male mice were maintained on a high-fat/high-sucrose Western-style diet for 60 d, then administered several mAChR antagonists 30 min prior to tissue harvest or a food intake test. Levels of 2-AG and the activity of its metabolic enzymes in the SI were quantitated. DIO mice, when compared to those fed a low-fat/no-sucrose diet, displayed increased expression of cFos protein in the dorsal motor nucleus of the vagus, which suggests an increased activity of efferent cholinergic neurotransmission. These mice exhibited elevated levels of 2-AG biosynthesis in the SI, that was reduced to control levels by mAChR antagonists. Moreover, the peripherally restricted mAChR antagonist, methylhomatropine bromide, and the peripherally restricted CB1R antagonist, AM6545, reduced food intake in DIO mice for up to 24 h but had no effect in mice conditionally deficient in SI CB1Rs. These results suggest that hyperactivity at mAChRs in the periphery increases formation of 2-AG in the SI and activates local CB1Rs, which drives hyperphagia in DIO.


Assuntos
Dieta Hiperlipídica , Endocanabinoides , Glicerídeos , Camundongos Endogâmicos C57BL , Obesidade , Transdução de Sinais , Transmissão Sináptica , Animais , Endocanabinoides/metabolismo , Masculino , Obesidade/metabolismo , Camundongos , Transmissão Sináptica/fisiologia , Transmissão Sináptica/efeitos dos fármacos , Dieta Hiperlipídica/efeitos adversos , Transdução de Sinais/fisiologia , Glicerídeos/metabolismo , Ácidos Araquidônicos/metabolismo , Ingestão de Alimentos/fisiologia , Ingestão de Alimentos/efeitos dos fármacos , Antagonistas Muscarínicos/farmacologia , Receptores Muscarínicos/metabolismo , Eixo Encéfalo-Intestino/fisiologia
20.
Annu Rev Nutr ; 44(1): 25-50, 2024 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-38848598

RESUMO

The time of day that we eat is increasingly recognized as contributing as importantly to overall health as the amount or quality of the food we eat. The endogenous circadian clock has evolved to promote intake at optimal times when an organism is intended to be awake and active, but electric lights and abundant food allow eating around the clock with deleterious health outcomes. In this review, we highlight literature pertaining to the effects of food timing on health, beginning with animal models and then translation into human experiments. We emphasize the pitfalls and opportunities that technological advances bring in bettering understanding of eating behaviors and their association with health and disease. There is great promise for restricting the timing of food intake both in clinical interventions and in public health campaigns for improving health via nonpharmacological therapies.


Assuntos
Ritmo Circadiano , Comportamento Alimentar , Humanos , Ritmo Circadiano/fisiologia , Animais , Comportamento Alimentar/fisiologia , Ingestão de Alimentos/fisiologia , Relógios Circadianos/fisiologia
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