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1.
Cell ; 166(1): 209-21, 2016 Jun 30.
Artículo en Inglés | MEDLINE | ID: mdl-27238020

RESUMEN

Neural inputs from internal organs are essential for normal autonomic function. The vagus nerve is a key body-brain connection that monitors the digestive, cardiovascular, and respiratory systems. Within the gastrointestinal tract, vagal sensory neurons detect gut hormones and organ distension. Here, we investigate the molecular diversity of vagal sensory neurons and their roles in sensing gastrointestinal inputs. Genetic approaches allowed targeted investigation of gut-to-brain afferents involved in homeostatic responses to ingested nutrients (GPR65 neurons) and mechanical distension of the stomach and intestine (GLP1R neurons). Optogenetics, in vivo ganglion imaging, and genetically guided anatomical mapping provide direct links between neuron identity, peripheral anatomy, central anatomy, conduction velocity, response properties in vitro and in vivo, and physiological function. These studies clarify the roles of vagal afferents in mediating particular gut hormone responses. Moreover, genetic control over gut-to-brain neurons provides a molecular framework for understanding neural control of gastrointestinal physiology.


Asunto(s)
Vías Nerviosas , Neuronas/metabolismo , Células Receptoras Sensoriales/metabolismo , Nervio Vago/metabolismo , Animales , Ganglios/metabolismo , Motilidad Gastrointestinal , Receptor del Péptido 1 Similar al Glucagón/metabolismo , Ratones , Optogenética , Receptores Acoplados a Proteínas G/metabolismo , Serotonina/metabolismo , Estómago/inervación
2.
Cell ; 159(6): 1417-1432, 2014 Dec 04.
Artículo en Inglés | MEDLINE | ID: mdl-25467445

RESUMEN

Pain information processing in the spinal cord has been postulated to rely on nociceptive transmission (T) neurons receiving inputs from nociceptors and Aß mechanoreceptors, with Aß inputs gated through feed-forward activation of spinal inhibitory neurons (INs). Here, we used intersectional genetic manipulations to identify these critical components of pain transduction. Marking and ablating six populations of spinal excitatory and inhibitory neurons, coupled with behavioral and electrophysiological analysis, showed that excitatory neurons expressing somatostatin (SOM) include T-type cells, whose ablation causes loss of mechanical pain. Inhibitory neurons marked by the expression of dynorphin (Dyn) represent INs, which are necessary to gate Aß fibers from activating SOM(+) neurons to evoke pain. Therefore, peripheral mechanical nociceptors and Aß mechanoreceptors, together with spinal SOM(+) excitatory and Dyn(+) inhibitory neurons, form a microcircuit that transmits and gates mechanical pain. PAPERCLIP:


Asunto(s)
Neuronas/fisiología , Dolor/metabolismo , Médula Espinal/fisiología , Animales , Dinorfinas/metabolismo , Mecanorreceptores/metabolismo , Ratones , Percepción del Dolor , Somatostatina/metabolismo
3.
Nature ; 620(7972): 154-162, 2023 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-37495689

RESUMEN

Fasting initiates a multitude of adaptations to allow survival. Activation of the hypothalamic-pituitary-adrenal (HPA) axis and subsequent release of glucocorticoid hormones is a key response that mobilizes fuel stores to meet energy demands1-5. Despite the importance of the HPA axis response, the neural mechanisms that drive its activation during energy deficit are unknown. Here, we show that fasting-activated hypothalamic agouti-related peptide (AgRP)-expressing neurons trigger and are essential for fasting-induced HPA axis activation. AgRP neurons do so through projections to the paraventricular hypothalamus (PVH), where, in a mechanism not previously described for AgRP neurons, they presynaptically inhibit the terminals of tonically active GABAergic afferents from the bed nucleus of the stria terminalis (BNST) that otherwise restrain activity of corticotrophin-releasing hormone (CRH)-expressing neurons. This disinhibition of PVHCrh neurons requires γ-aminobutyric acid (GABA)/GABA-B receptor signalling and potently activates the HPA axis. Notably, stimulation of the HPA axis by AgRP neurons is independent of their induction of hunger, showing that these canonical 'hunger neurons' drive many distinctly different adaptations to the fasted state. Together, our findings identify the neural basis for fasting-induced HPA axis activation and uncover a unique means by which AgRP neurons activate downstream neurons: through presynaptic inhibition of GABAergic afferents. Given the potency of this disinhibition of tonically active BNST afferents, other activators of the HPA axis, such as psychological stress, may also work by reducing BNST inhibitory tone onto PVHCrh neurons.


Asunto(s)
Ayuno , Sistema Hipotálamo-Hipofisario , Neuronas , Sistema Hipófiso-Suprarrenal , Proteína Relacionada con Agouti/metabolismo , Hormona Liberadora de Corticotropina/metabolismo , Ayuno/fisiología , Neuronas GABAérgicas/metabolismo , Ácido gamma-Aminobutírico/metabolismo , Sistema Hipotálamo-Hipofisario/citología , Sistema Hipotálamo-Hipofisario/metabolismo , Neuronas/metabolismo , Núcleo Hipotalámico Paraventricular/citología , Núcleo Hipotalámico Paraventricular/metabolismo , Sistema Hipófiso-Suprarrenal/citología , Sistema Hipófiso-Suprarrenal/inervación , Sistema Hipófiso-Suprarrenal/metabolismo , Terminales Presinápticos/metabolismo , Núcleos Septales/citología , Núcleos Septales/metabolismo
4.
Cell ; 152(3): 612-9, 2013 Jan 31.
Artículo en Inglés | MEDLINE | ID: mdl-23374353

RESUMEN

Melanocortin 4 receptors (MC4Rs) in the central nervous system are key regulators of energy and glucose homeostasis. Notably, obese patients with MC4R mutations are hyperinsulinemic and resistant to obesity-induced hypertension. Although these effects are probably dependent upon the activity of the autonomic nervous system, the cellular effects of MC4Rs on parasympathetic and sympathetic neurons remain undefined. Here, we show that MC4R agonists inhibit parasympathetic preganglionic neurons in the brainstem. In contrast, MC4R agonists activate sympathetic preganglionic neurons in the spinal cord. Deletion of MC4Rs in cholinergic neurons resulted in elevated levels of insulin. Furthermore, re-expression of MC4Rs specifically in cholinergic neurons (including sympathetic preganglionic neurons) restores obesity-associated hypertension in MC4R null mice. These findings provide a cellular correlate of the autonomic side effects associated with MC4R agonists and demonstrate a role for MC4Rs expressed in cholinergic neurons in the regulation of insulin levels and in the development of obesity-induced hypertension.


Asunto(s)
Tronco Encefálico/metabolismo , Insulina/metabolismo , Neuronas/metabolismo , Receptor de Melanocortina Tipo 4/agonistas , Receptor de Melanocortina Tipo 4/metabolismo , Animales , Presión Sanguínea , Tronco Encefálico/citología , Neuronas Colinérgicas/metabolismo , AMP Cíclico/metabolismo , Fenómenos Electrofisiológicos , Humanos , Canales KATP/metabolismo , Masculino , Ratones , Obesidad/metabolismo , Obesidad/fisiopatología , Sistema Nervioso Parasimpático/metabolismo , Receptor de Melanocortina Tipo 4/genética , Médula Espinal/metabolismo , Sistema Nervioso Simpático/metabolismo
5.
Cell ; 151(3): 645-57, 2012 Oct 26.
Artículo en Inglés | MEDLINE | ID: mdl-23101631

RESUMEN

Neural regulation of energy expenditure is incompletely understood. By genetically disrupting GABAergic transmission in a cell-specific fashion, and by combining this with selective pharmacogenetic activation and optogenetic mapping techniques, we have uncovered an arcuate-based circuit that selectively drives energy expenditure. Specifically, mice lacking synaptic GABA release from RIP-Cre neurons have reduced energy expenditure, become obese and are extremely sensitive to high-fat diet-induced obesity, the latter due to defective diet-induced thermogenesis. Leptin's ability to stimulate thermogenesis, but not to reduce feeding, is markedly attenuated. Acute, selective activation of arcuate GABAergic RIP-Cre neurons, which monosynaptically innervate PVH neurons projecting to the NTS, rapidly stimulates brown fat and increases energy expenditure but does not affect feeding. Importantly, this response is dependent upon GABA release from RIP-Cre neurons. Thus, GABAergic RIP-Cre neurons in the arcuate selectively drive energy expenditure, contribute to leptin's stimulatory effect on thermogenesis, and protect against diet-induced obesity.


Asunto(s)
Núcleo Arqueado del Hipotálamo/metabolismo , Metabolismo Energético , Neuronas GABAérgicas/metabolismo , Vías Nerviosas , Tejido Adiposo Pardo/metabolismo , Animales , Núcleo Arqueado del Hipotálamo/citología , Dieta , Integrasas/metabolismo , Leptina/metabolismo , Ratones , Obesidad/metabolismo , Núcleo Hipotalámico Paraventricular/citología , Núcleo Hipotalámico Paraventricular/metabolismo , Proteína 2 de Transporte Vesicular de Glutamato/metabolismo , Proteínas del Transporte Vesicular de Aminoácidos Inhibidores/genética , Proteínas del Transporte Vesicular de Aminoácidos Inhibidores/metabolismo
6.
Nature ; 595(7869): 695-700, 2021 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-34262177

RESUMEN

Agouti-related peptide (AGRP)-expressing neurons are activated by fasting-this causes hunger1-4, an aversive state that motivates the seeking and consumption of food5,6. Eating returns AGRP neuron activity towards baseline on three distinct timescales: rapidly and transiently following sensory detection of food cues6-8, slowly and longer-lasting in response to nutrients in the gut9,10, and even more slowly and permanently with restoration of energy balance9,11. The rapid regulation by food cues is of particular interest as its neurobiological basis and purpose are unknown. Given that AGRP neuron activity is aversive6, the sensory cue-linked reductions in activity could function to guide behaviour. To evaluate this, we first identified the circuit mediating sensory cue inhibition and then selectively perturbed it to determine function. Here, we show that a lateral hypothalamic glutamatergic â†’ dorsomedial hypothalamic GABAergic (γ-aminobutyric acid-producing)12 → AGRP neuron circuit mediates this regulation. Interference with this circuit impairs food cue inhibition of AGRP neurons and, notably, greatly impairs learning of a sensory cue-initiated food-acquisition task. This is specific for food, as learning of an identical water-acquisition task is unaffected. We propose that decreases in aversive AGRP neuron activity6 mediated by this food-specific circuit increases the incentive salience13 of food cues, and thus facilitates the learning of food-acquisition tasks.


Asunto(s)
Proteína Relacionada con Agouti/metabolismo , Señales (Psicología) , Alimentos , Hambre/fisiología , Vías Nerviosas , Neuronas/fisiología , Animales , Área Hipotalámica Lateral/fisiología , Aprendizaje , Masculino , Ratones , Ratones Endogámicos C57BL , Optogenética
7.
Nature ; 589(7842): 426-430, 2021 01.
Artículo en Inglés | MEDLINE | ID: mdl-33268898

RESUMEN

Among numerous challenges encountered at the beginning of extrauterine life, the most celebrated is the first breath that initiates a life-sustaining motor activity1. The neural systems that regulate breathing are fragile early in development, and it is not clear how they adjust to support breathing at birth. Here we identify a neuropeptide system that becomes activated immediately after birth and supports breathing. Mice that lack PACAP selectively in neurons of the retrotrapezoid nucleus (RTN) displayed increased apnoeas and blunted CO2-stimulated breathing; re-expression of PACAP in RTN neurons corrected these breathing deficits. Deletion of the PACAP receptor PAC1 from the pre-Bötzinger complex-an RTN target region responsible for generating the respiratory rhythm-phenocopied the breathing deficits observed after RTN deletion of PACAP, and suppressed PACAP-evoked respiratory stimulation in the pre-Bötzinger complex. Notably, a postnatal burst of PACAP expression occurred in RTN neurons precisely at the time of birth, coinciding with exposure to the external environment. Neonatal mice with deletion of PACAP in RTN neurons displayed increased apnoeas that were further exacerbated by changes in ambient temperature. Our findings demonstrate that well-timed PACAP expression by RTN neurons provides an important supplementary respiratory drive immediately after birth and reveal key molecular components of a peptidergic neural circuit that supports breathing at a particularly vulnerable period in life.


Asunto(s)
Tronco Encefálico/fisiología , Parto/fisiología , Polipéptido Hipofisario Activador de la Adenilato-Ciclasa/metabolismo , Respiración , Animales , Apnea/metabolismo , Tronco Encefálico/citología , Dióxido de Carbono/metabolismo , Femenino , Masculino , Ratones , Neuronas/metabolismo , Polipéptido Hipofisario Activador de la Adenilato-Ciclasa/deficiencia , Polipéptido Hipofisario Activador de la Adenilato-Ciclasa/genética , Receptores del Polipéptido Activador de la Adenilato-Ciclasa Hipofisaria/deficiencia , Receptores del Polipéptido Activador de la Adenilato-Ciclasa Hipofisaria/genética , Receptores del Polipéptido Activador de la Adenilato-Ciclasa Hipofisaria/metabolismo
8.
Nature ; 578(7796): 610-614, 2020 02.
Artículo en Inglés | MEDLINE | ID: mdl-32076265

RESUMEN

The sympathetic nervous system innervates peripheral organs to regulate their function and maintain homeostasis, whereas target cells also produce neurotrophic factors to promote sympathetic innervation1,2. The molecular basis of this bi-directional communication remains to be fully determined. Here we use thermogenic adipose tissue from mice as a model system to show that T cells, specifically γδ T cells, have a crucial role in promoting sympathetic innervation, at least in part by driving the expression of TGFß1 in parenchymal cells via the IL-17 receptor C (IL-17RC). Ablation of IL-17RC specifically in adipose tissue reduces expression of TGFß1 in adipocytes, impairs local sympathetic innervation and causes obesity and other metabolic phenotypes that are consistent with defective thermogenesis; innervation can be fully rescued by restoring TGFß1 expression. Ablating γδ Τ cells and the IL-17RC signalling pathway also impairs sympathetic innervation in other tissues such as salivary glands. These findings demonstrate coordination between T cells and parenchymal cells to regulate sympathetic innervation.


Asunto(s)
Adipocitos/metabolismo , Tejido Adiposo/inervación , Tejido Adiposo/metabolismo , Interleucina-17/metabolismo , Sistema Nervioso Simpático/fisiología , Linfocitos T/metabolismo , Termogénesis , Tejido Adiposo Pardo/metabolismo , Animales , Interleucina-17/deficiencia , Interleucina-17/genética , Masculino , Ratones , Ratones Noqueados , Especificidad de Órganos , Tejido Parenquimatoso/citología , Transducción de Señal , Factor de Crecimiento Transformador beta1/genética , Factor de Crecimiento Transformador beta1/metabolismo
9.
Nature ; 569(7755): 229-235, 2019 05.
Artículo en Inglés | MEDLINE | ID: mdl-31043739

RESUMEN

The sympathetic nervous system drives brown and beige adipocyte thermogenesis through the release of noradrenaline from local axons. However, the molecular basis of higher levels of sympathetic innervation of thermogenic fat, compared to white fat, has remained unknown. Here we show that thermogenic adipocytes express a previously unknown, mammal-specific protein of the endoplasmic reticulum that we term calsyntenin 3ß. Genetic loss or gain of expression of calsyntenin 3ß in adipocytes reduces or enhances functional sympathetic innervation, respectively, in adipose tissue. Ablation of calsyntenin 3ß predisposes mice on a high-fat diet to obesity. Mechanistically, calsyntenin 3ß promotes endoplasmic-reticulum localization and secretion of S100b-a protein that lacks a signal peptide-from brown adipocytes. S100b stimulates neurite outgrowth from sympathetic neurons in vitro. A deficiency of S100b phenocopies deficiency of calsyntenin 3ß, and forced expression of S100b in brown adipocytes rescues the defective sympathetic innervation that is caused by ablation of calsyntenin 3ß. Our data reveal a mammal-specific mechanism of communication between thermogenic adipocytes and sympathetic neurons.


Asunto(s)
Tejido Adiposo Pardo/inervación , Tejido Adiposo Pardo/metabolismo , Proteínas de Unión al Calcio/metabolismo , Proteínas de la Membrana/metabolismo , Neuronas/metabolismo , Subunidad beta de la Proteína de Unión al Calcio S100/metabolismo , Sistema Nervioso Simpático/citología , Termogénesis , Adipocitos/metabolismo , Animales , Proteínas de Unión al Calcio/deficiencia , Proteínas de Unión al Calcio/genética , Dieta Alta en Grasa , Retículo Endoplásmico/metabolismo , Femenino , Masculino , Proteínas de la Membrana/deficiencia , Proteínas de la Membrana/genética , Ratones , Ratones Transgénicos , Neuritas/metabolismo , Obesidad/metabolismo , Especificidad de Órganos , Sistema Nervioso Simpático/metabolismo , Termogénesis/genética
10.
Nature ; 570(7760): E32, 2019 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-31114060

RESUMEN

In Fig. 6a of this Article, the two dots corresponding to Cidea and S100b were erroneously moved to the top left of the volcano plot; this figure has been corrected online.An amendment to this paper has been published and can be accessed via a link at the top of the paper.

11.
J Biol Chem ; 298(9): 102347, 2022 09.
Artículo en Inglés | MEDLINE | ID: mdl-35963433

RESUMEN

Cell death-inducing DNA fragmentation factor-like effector C (CIDEC) expression in adipose tissue positively correlates with insulin sensitivity in obese humans. Further, E186X, a single-nucleotide CIDEC variant is associated with lipodystrophy, hypertriglyceridemia, and insulin resistance. To establish the unknown mechanistic link between CIDEC and maintenance of systemic glucose homeostasis, we generated transgenic mouse models expressing CIDEC (Ad-CIDECtg) and CIDEC E186X variant (Ad-CIDECmut) transgene specifically in the adipose tissue. We found that Ad-CIDECtg but not Ad-CIDECmut mice were protected against high-fat diet-induced glucose intolerance. Furthermore, we revealed the role of CIDEC in lipid metabolism using transcriptomics and lipidomics. Serum triglycerides, cholesterol, and low-density lipoproteins were lower in high-fat diet-fed Ad-CIDECtg mice compared to their littermate controls. Mechanistically, we demonstrated that CIDEC regulates the enzymatic activity of adipose triglyceride lipase via interacting with its activator, CGI-58, to reduce free fatty acid release and lipotoxicity. In addition, we confirmed that CIDEC is indeed a vital regulator of lipolysis in adipose tissue of obese humans, and treatment with recombinant CIDEC decreased triglyceride breakdown in visceral human adipose tissue. Our study unravels a central pathway whereby adipocyte-specific CIDEC plays a pivotal role in regulating adipose lipid metabolism and whole-body glucose homeostasis. In summary, our findings identify human CIDEC as a potential 'drug' or a 'druggable' target to reverse obesity-induced lipotoxicity and glucose intolerance.


Asunto(s)
Intolerancia a la Glucosa , Resistencia a la Insulina , Animales , Colesterol , Dieta Alta en Grasa/efectos adversos , Ácidos Grasos no Esterificados , Glucosa , Intolerancia a la Glucosa/genética , Intolerancia a la Glucosa/prevención & control , Humanos , Resistencia a la Insulina/genética , Lipasa/genética , Metabolismo de los Lípidos , Lipoproteínas LDL/metabolismo , Ratones , Nucleótidos/metabolismo , Obesidad/genética , Proteínas/metabolismo , Transgenes , Triglicéridos
12.
Nature ; 546(7660): 611-616, 2017 06 29.
Artículo en Inglés | MEDLINE | ID: mdl-28614299

RESUMEN

Physiological needs bias perception and attention to relevant sensory cues. This process is 'hijacked' by drug addiction, causing cue-induced cravings and relapse. Similarly, its dysregulation contributes to failed diets, obesity, and eating disorders. Neuroimaging studies in humans have implicated insular cortex in these phenomena. However, it remains unclear how 'cognitive' cortical representations of motivationally relevant cues are biased by subcortical circuits that drive specific motivational states. Here we develop a microprism-based cellular imaging approach to monitor visual cue responses in the insular cortex of behaving mice across hunger states. Insular cortex neurons demonstrate food-cue-biased responses that are abolished during satiety. Unexpectedly, while multiple satiety-related visceral signals converge in insular cortex, chemogenetic activation of hypothalamic 'hunger neurons' (expressing agouti-related peptide (AgRP)) bypasses these signals to restore hunger-like response patterns in insular cortex. Circuit mapping and pathway-specific manipulations uncover a pathway from AgRP neurons to insular cortex via the paraventricular thalamus and basolateral amygdala. These results reveal a neural basis for state-specific biased processing of motivationally relevant cues.


Asunto(s)
Corteza Cerebral/citología , Corteza Cerebral/fisiología , Alimentos , Homeostasis , Vías Nerviosas , Estimulación Luminosa , Proteína Relacionada con Agouti/metabolismo , Animales , Señales (Psicología) , Hambre/fisiología , Hipotálamo/citología , Hipotálamo/fisiología , Masculino , Ratones , Ratones Endogámicos C57BL , Neuronas/metabolismo , Fragmentos de Péptidos/metabolismo , Respuesta de Saciedad/fisiología
13.
N Engl J Med ; 380(5): 459-471, 2019 01 31.
Artículo en Inglés | MEDLINE | ID: mdl-30699320

RESUMEN

Well-being requires the maintenance of energy stores, water, and sodium within permissive zones. The brain, as ringleader, orchestrates their homeostatic control. It senses disturbances, decides what needs to be done next, and then restores balance by altering physiological processes and ingestive drives (i.e., hunger, thirst, and salt appetite). But how the brain orchestrates this control has been unknown until recently ­ largely because we have lacked the ability to elucidate and then probe the underlying neuronal "wiring diagrams." This has changed with the advent of new, transformative neuroscientific tools. When targeted to specific neurons, these tools make it possible to selectively map a neuron's connections, measure its responses to various homeostatic challenges, and experimentally manipulate its activity. This review examines these approaches and then highlights how they are advancing, and in some cases profoundly changing, our understanding of energy, water, and salt homeostasis and the linked ingestive drives.


Asunto(s)
Encéfalo/fisiología , Impulso (Psicología) , Homeostasis/fisiología , Hambre/fisiología , Neuronas/fisiología , Sed/fisiología , Animales , Encéfalo/anatomía & histología , Expresión Génica , Humanos , Natriuresis/fisiología , Neuronas/citología , Cloruro de Sodio
14.
Nature ; 532(7597): 103-6, 2016 Apr 07.
Artículo en Inglés | MEDLINE | ID: mdl-27001694

RESUMEN

Instinctive reactions to danger are critical to the perpetuation of species and are observed throughout the animal kingdom. The scent of predators induces an instinctive fear response in mice that includes behavioural changes, as well as a surge in blood stress hormones that mobilizes multiple body systems to escape impending danger. How the olfactory system routes predator signals detected in the nose to achieve these effects is unknown. Here we identify a specific area of the olfactory cortex in mice that induces stress hormone responses to volatile predator odours. Using monosynaptic and polysynaptic viral tracers, we found that multiple olfactory cortical areas transmit signals to hypothalamic corticotropin-releasing hormone (CRH) neurons, which control stress hormone levels. However, only one minor cortical area, the amygdalo-piriform transition area (AmPir), contained neurons upstream of CRH neurons that were activated by volatile predator odours. Chemogenetic stimulation of AmPir activated CRH neurons and induced an increase in blood stress hormones, mimicking an instinctive fear response. Moreover, chemogenetic silencing of AmPir markedly reduced the stress hormone response to predator odours without affecting a fear behaviour. These findings suggest that AmPir, a small area comprising <5% of the olfactory cortex, plays a key part in the hormonal component of the instinctive fear response to volatile predator scents.


Asunto(s)
Hormonas/metabolismo , Odorantes/análisis , Corteza Olfatoria/anatomía & histología , Corteza Olfatoria/fisiología , Vías Olfatorias , Conducta Predatoria , Olfato/fisiología , Estrés Psicológico , Hormona Adrenocorticotrópica/sangre , Animales , Corticosterona/sangre , Hormona Liberadora de Corticotropina/sangre , Hormona Liberadora de Corticotropina/metabolismo , Reacción de Fuga , Miedo , Femenino , Hipocampo/citología , Hipocampo/fisiología , Hormonas/sangre , Instinto , Masculino , Ratones , Neuronas/metabolismo , Corteza Olfatoria/citología , Percepción Olfatoria/fisiología , Telencéfalo/anatomía & histología , Telencéfalo/citología , Telencéfalo/fisiología
16.
Proc Natl Acad Sci U S A ; 116(27): 13670-13679, 2019 07 02.
Artículo en Inglés | MEDLINE | ID: mdl-31213533

RESUMEN

Leptin informs the brain about sufficiency of fuel stores. When insufficient, leptin levels fall, triggering compensatory increases in appetite. Falling leptin is first sensed by hypothalamic neurons, which then initiate adaptive responses. With regard to hunger, it is thought that leptin-sensing neurons work entirely via circuits within the central nervous system (CNS). Very unexpectedly, however, we now show this is not the case. Instead, stimulation of hunger requires an intervening endocrine step, namely activation of the hypothalamic-pituitary-adrenocortical (HPA) axis. Increased corticosterone then activates AgRP neurons to fully increase hunger. Importantly, this is true for 2 forms of low leptin-induced hunger, fasting and poorly controlled type 1 diabetes. Hypoglycemia, which also stimulates hunger by activating CNS neurons, albeit independently of leptin, similarly recruits and requires this pathway by which HPA axis activity stimulates AgRP neurons. Thus, HPA axis regulation of AgRP neurons is a previously underappreciated step in homeostatic regulation of hunger.


Asunto(s)
Hambre/fisiología , Sistema Hipotálamo-Hipofisario/fisiología , Leptina/fisiología , Sistema Hipófiso-Suprarrenal/fisiología , Hormona Adrenocorticotrópica/sangre , Animales , Ingestión de Alimentos/fisiología , Ayuno/fisiología , Sistema Hipotálamo-Hipofisario/efectos de los fármacos , Insulina/farmacología , Leptina/sangre , Masculino , Mifepristona/farmacología , Sistema Hipófiso-Suprarrenal/efectos de los fármacos , Ratas , Receptores de Glucocorticoides/antagonistas & inhibidores
17.
Nature ; 507(7491): 238-42, 2014 Mar 13.
Artículo en Inglés | MEDLINE | ID: mdl-24487620

RESUMEN

Hunger is a hard-wired motivational state essential for survival. Agouti-related peptide (AgRP)-expressing neurons in the arcuate nucleus (ARC) at the base of the hypothalamus are crucial to the control of hunger. They are activated by caloric deficiency and, when naturally or artificially stimulated, they potently induce intense hunger and subsequent food intake. Consistent with their obligatory role in regulating appetite, genetic ablation or chemogenetic inhibition of AgRP neurons decreases feeding. Excitatory input to AgRP neurons is important in caloric-deficiency-induced activation, and is notable for its remarkable degree of caloric-state-dependent synaptic plasticity. Despite the important role of excitatory input, its source(s) has been unknown. Here, through the use of Cre-recombinase-enabled, cell-specific neuron mapping techniques in mice, we have discovered strong excitatory drive that, unexpectedly, emanates from the hypothalamic paraventricular nucleus, specifically from subsets of neurons expressing thyrotropin-releasing hormone (TRH) and pituitary adenylate cyclase-activating polypeptide (PACAP, also known as ADCYAP1). Chemogenetic stimulation of these afferent neurons in sated mice markedly activates AgRP neurons and induces intense feeding. Conversely, acute inhibition in mice with caloric-deficiency-induced hunger decreases feeding. Discovery of these afferent neurons capable of triggering hunger advances understanding of how this intense motivational state is regulated.


Asunto(s)
Proteína Relacionada con Agouti/metabolismo , Hambre/fisiología , Vías Nerviosas/fisiología , Neuronas/metabolismo , Núcleo Hipotalámico Paraventricular/fisiología , Proteína Relacionada con Agouti/deficiencia , Animales , Apetito/efectos de los fármacos , Apetito/fisiología , Núcleo Arqueado del Hipotálamo/citología , Núcleo Arqueado del Hipotálamo/metabolismo , Mapeo Encefálico , Rastreo Celular , Clozapina/análogos & derivados , Clozapina/farmacología , Dependovirus/genética , Ingestión de Alimentos/efectos de los fármacos , Ingestión de Alimentos/fisiología , Femenino , Privación de Alimentos , Hambre/efectos de los fármacos , Integrasas/metabolismo , Masculino , Ratones , Vías Nerviosas/efectos de los fármacos , Plasticidad Neuronal/efectos de los fármacos , Plasticidad Neuronal/fisiología , Neuronas/efectos de los fármacos , Neuronas Aferentes/efectos de los fármacos , Neuronas Aferentes/metabolismo , Núcleo Hipotalámico Paraventricular/citología , Fragmentos de Péptidos/deficiencia , Fragmentos de Péptidos/metabolismo , Polipéptido Hipofisario Activador de la Adenilato-Ciclasa/metabolismo , Virus de la Rabia/genética , Respuesta de Saciedad/fisiología , Hormona Liberadora de Tirotropina/metabolismo
18.
J Neurosci ; 37(15): 3995-4006, 2017 04 12.
Artículo en Inglés | MEDLINE | ID: mdl-28235898

RESUMEN

Narcolepsy is characterized by chronic sleepiness and cataplexy-sudden muscle paralysis triggered by strong, positive emotions. This condition is caused by a lack of orexin (hypocretin) signaling, but little is known about the neural mechanisms that mediate cataplexy. The amygdala regulates responses to rewarding stimuli and contains neurons active during cataplexy. In addition, lesions of the amygdala reduce cataplexy. Because GABAergic neurons of the central nucleus of the amygdala (CeA) target brainstem regions known to regulate muscle tone, we hypothesized that these cells promote emotion-triggered cataplexy. We injected adeno-associated viral vectors coding for Cre-dependent DREADDs or a control vector into the CeA of orexin knock-out mice crossed with vGAT-Cre mice, resulting in selective expression of the excitatory hM3 receptor or the inhibitory hM4 receptor in GABAergic neurons of the CeA. We measured sleep/wake behavior and cataplexy after injection of saline or the hM3/hM4 ligand clozapine-N-oxide (CNO) under baseline conditions and under conditions that should elicit positive emotions. In mice expressing hM3, CNO approximately doubled the amount of cataplexy in the first 3 h after dosing under baseline conditions. Rewarding stimuli (chocolate or running wheels) also increased cataplexy, but CNO produced no further increase. In mice expressing hM4, CNO reduced cataplexy in the presence of chocolate or running wheels. These results demonstrate that GABAergic neurons of the CeA are sufficient and necessary for the production of cataplexy in mice, and they likely are a key part of the mechanism through which positive emotions trigger cataplexy.SIGNIFICANCE STATEMENT Cataplexy is one of the major symptoms of narcolepsy, but little is known about how strong, positive emotions trigger these episodes of muscle paralysis. Prior research shows that amygdala neurons are active during cataplexy and cataplexy is reduced by lesions of the amygdala. We found that cataplexy is substantially increased by selective activation of GABAergic neurons in the central nucleus of the amygdala (CeA). We also demonstrate that inhibition of these neurons reduces reward-promoted cataplexy. These results build upon prior work to establish the CeA as a crucial element in the neural mechanisms of cataplexy. These results demonstrate the importance of the CeA in regulating responses to rewarding stimuli, shedding light on the broader neurobiology of emotions and motor control.


Asunto(s)
Cataplejía/genética , Cataplejía/metabolismo , Núcleo Amigdalino Central/metabolismo , Neuronas GABAérgicas/metabolismo , Animales , Locomoción/fisiología , Masculino , Ratones , Ratones Noqueados
19.
Nature ; 482(7383): 85-8, 2012 Jan 18.
Artículo en Inglés | MEDLINE | ID: mdl-22258508

RESUMEN

Dopamine has a central role in motivation and reward. Dopaminergic neurons in the ventral tegmental area (VTA) signal the discrepancy between expected and actual rewards (that is, reward prediction error), but how they compute such signals is unknown. We recorded the activity of VTA neurons while mice associated different odour cues with appetitive and aversive outcomes. We found three types of neuron based on responses to odours and outcomes: approximately half of the neurons (type I, 52%) showed phasic excitation after reward-predicting odours and rewards in a manner consistent with reward prediction error coding; the other half of neurons showed persistent activity during the delay between odour and outcome that was modulated positively (type II, 31%) or negatively (type III, 18%) by the value of outcomes. Whereas the activity of type I neurons was sensitive to actual outcomes (that is, when the reward was delivered as expected compared to when it was unexpectedly omitted), the activity of type II and type III neurons was determined predominantly by reward-predicting odours. We 'tagged' dopaminergic and GABAergic neurons with the light-sensitive protein channelrhodopsin-2 and identified them based on their responses to optical stimulation while recording. All identified dopaminergic neurons were of type I and all GABAergic neurons were of type II. These results show that VTA GABAergic neurons signal expected reward, a key variable for dopaminergic neurons to calculate reward prediction error.


Asunto(s)
Neuronas Dopaminérgicas/metabolismo , Neuronas GABAérgicas/metabolismo , Castigo , Recompensa , Área Tegmental Ventral/citología , Área Tegmental Ventral/fisiología , Animales , Channelrhodopsins , Señales (Psicología) , Dopamina/metabolismo , Masculino , Ratones , Ratones Endogámicos C57BL , Odorantes/análisis , Análisis de Componente Principal , Ácido gamma-Aminobutírico/metabolismo
20.
Nature ; 485(7400): 646-50, 2012 May 13.
Artículo en Inglés | MEDLINE | ID: mdl-22660328

RESUMEN

Neural activity during development critically shapes postnatal wiring of the mammalian brain. This is best illustrated by the sensory systems, in which the patterned feed-forward excitation provided by sensory organs and experience drives the formation of mature topographic circuits capable of extracting specific features of sensory stimuli. In contrast, little is known about the role of early activity in the development of the basal ganglia, a phylogenetically ancient group of nuclei fundamentally important for complex motor action and reward-based learning. These nuclei lack direct sensory input and are only loosely topographically organized, forming interlocking feed-forward and feed-back inhibitory circuits without laminar structure. Here we use transgenic mice and viral gene transfer methods to modulate neurotransmitter release and neuronal activity in vivo in the developing striatum. We find that the balance of activity between the two inhibitory and antagonist pathways in the striatum regulates excitatory innervation of the basal ganglia during development. These effects indicate that the propagation of activity through a multi-stage network regulates the wiring of the basal ganglia, revealing an important role of positive feedback in driving network maturation.


Asunto(s)
Ganglios Basales/embriología , Ganglios Basales/fisiología , Neostriado/embriología , Neostriado/fisiología , Vías Nerviosas/fisiología , Sinapsis/metabolismo , Animales , Ganglios Basales/citología , Corteza Cerebral/citología , Corteza Cerebral/fisiología , Retroalimentación Fisiológica , Femenino , Masculino , Ratones , Ratones Transgénicos , Modelos Neurológicos , Neostriado/citología , Inhibición Neural , Tálamo/citología , Tálamo/fisiología , Proteínas del Transporte Vesicular de Aminoácidos Inhibidores/deficiencia , Proteínas del Transporte Vesicular de Aminoácidos Inhibidores/genética , Proteínas del Transporte Vesicular de Aminoácidos Inhibidores/metabolismo , Ácido gamma-Aminobutírico/metabolismo
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