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1.
Psychoneuroendocrinology ; 156: 106333, 2023 10.
Article in English | MEDLINE | ID: mdl-37454647

ABSTRACT

OBJECTIVE: Ghrelin is a potent orexigenic hormone, and the lateral hypothalamic area (LHA) has been suggested as a putative target mediating ghrelin's effects on food intake. Here, we aimed to investigate the presence of neurons expressing ghrelin receptor (a.k.a. growth hormone secretagogue receptor, GHSR) in the mouse LHA (LHAGHSR neurons), its physiological implications and the neuronal circuit recruited by local ghrelin action. METHODS: We investigated the distribution of LHAGHSR neurons using different histologic strategies, including the use of a reporter mice expressing enhanced green fluorescent protein under the control of the GHSR promoter. Also, we investigated the physiological implications of local injections of ghrelin within the LHA, and the extent to which the orexigenic effect of intra-LHA-injected ghrelin involves the arcuate nucleus (ARH) and orexin neurons of the LHA (LHAorexin neurons) RESULTS: We found that: 1) LHAGHSR neurons are homogeneously distributed throughout the entire LHA; 2) intra-LHA injections of ghrelin transiently increase food intake and locomotor activity; 3) ghrelin's orexigenic effect in the LHA involves the indirect recruitment of LHAorexin neurons and the activation of ARH neurons; and 4) LHAGHSR neurons are not targeted by plasma ghrelin. CONCLUSIONS: We provide a compelling neuroanatomical and functional characterization of LHAGHSR neurons in male mice that indicates that LHAGHSR cells are part of a hypothalamic neuronal circuit that potently induces food intake.


Subject(s)
Arcuate Nucleus of Hypothalamus , Hypothalamic Area, Lateral , Mice , Male , Animals , Hypothalamic Area, Lateral/metabolism , Arcuate Nucleus of Hypothalamus/metabolism , Ghrelin/pharmacology , Ghrelin/metabolism , Orexins , Neurons/metabolism , Receptors, Ghrelin/metabolism , Eating
2.
J Neuroendocrinol ; 35(1): e13224, 2023 01.
Article in English | MEDLINE | ID: mdl-36580314

ABSTRACT

The stomach-derived octanoylated peptide ghrelin was discovered in 1999 and recognized as an endogenous agonist of the growth hormone secretagogue receptor (GHSR). Subsequently, ghrelin has been shown to play key roles in controlling not only growth hormone secretion, but also a variety of other physiological functions including, but not limited to, food intake, reward-related behaviors, glucose homeostasis and gastrointestinal tract motility. Importantly, a non-acylated form of ghrelin, desacyl-ghrelin, can also be detected in biological samples. Desacyl-ghrelin, however, does not bind to GHSR at physiological levels, and its physiological role has remained less well-characterized than that of ghrelin. Ghrelin and desacyl-ghrelin are currently referred to in the literature using many different terms, highlighting the need for a consistent nomenclature. The variability of terms used to designate ghrelin can lead not only to confusion, but also to miscommunication, especially for those who are less familiar with the ghrelin literature. Thus, we conducted a survey among experts who have contributed to the ghrelin literature aiming to identify whether a consensus may be reached. Based on the results of this consensus, we propose using the terms "ghrelin" and "desacyl-ghrelin" to refer to the hormone itself and its non-acylated form, respectively. Based on the results of this consensus, we further propose using the terms "GHSR" for the receptor, and "LEAP2" for liver-expressed antimicrobial peptide 2, a recently recognized endogenous GHSR antagonist/inverse agonist.


Subject(s)
Hepcidins , Receptors, Ghrelin , Receptors, Ghrelin/metabolism , Drug Inverse Agonism , Consensus
3.
Psychoneuroendocrinology ; 139: 105716, 2022 05.
Article in English | MEDLINE | ID: mdl-35290931

ABSTRACT

Ghrelin is a stomach-derived hormone that acts via the growth hormone secretagogue receptor (GHSR). Recent evidence suggests that some of ghrelin's actions may be mediated via the supramammillary nucleus (SuM). Not only does ghrelin bind to cells within the mouse SuM, but ghrelin also activates SuM cells and intra-SuM ghrelin administration induces feeding in rats. In the current study, we aimed to further characterize ghrelin action in the SuM. We first investigated a mouse model expressing enhanced green fluorescent protein (eGFP) under the promoter of GHSR (GHSR-eGFP mice). We found that the SuM of GHSR-eGFP mice contains a significant amount of eGFP cells, some of which express neuronal nitric oxide synthase. Centrally-, but not systemically-, injected ghrelin reached the SuM, where it induced c-Fos expression. Furthermore, a 5-day 40% calorie restriction protocol, but not a 2-day fast, increased c-Fos expression in non-eGFP+ cells of the SuM of GHSR-eGFP mice, whereas c-Fos induction by calorie restriction was not observed in GHSR-deficient mice. Exposure of satiated mice to a binge-like eating protocol also increased c-Fos expression in non-eGFP+ cells of the SuM of GHSR-eGFP mice in a GHSR-dependent manner. Finally, intra-SuM-injected ghrelin did not acutely affect food intake, locomotor activity, behavioral arousal or spatial memory but increased recognition memory. Thus, we provide a compelling neuroanatomical characterization of GHSR SuM neurons and its behavioral implications in mice.


Subject(s)
Neurons , Nitric Oxide , Receptors, Ghrelin , Animals , Ghrelin/metabolism , Hypothalamus, Posterior , Mice , Neurons/metabolism , Nitric Oxide/metabolism , Rats , Receptors, Ghrelin/metabolism , Signal Transduction
4.
Brain Struct Funct ; 223(7): 3133-3147, 2018 Sep.
Article in English | MEDLINE | ID: mdl-29761230

ABSTRACT

Ghrelin is a stomach-derived hormone that regulates a variety of biological functions such as food intake, gastrointestinal function and blood glucose metabolism, among others. Ghrelin acts via the growth hormone secretagogue receptor (GHSR), a G-protein-coupled receptor located in key brain areas that mediate specific actions of the hormone. GHSR is highly expressed in the nucleus of the solitary tract (NTS), which is located in the medulla oblongata and controls essential functions, including orofacial, autonomic, neuroendocrine and behavioral responses. Here, we used a mouse model, in which the expression of enhanced green fluorescent protein (eGFP) is controlled by the promoter of GHSR (GHSR-eGFP mice), to gain neuroanatomical and functional insights of the GHSR-expressing neurons of the NTS. We found that GHSR-expressing neurons of the NTS are segregated in clusters that were symmetrically distributed to the midline: (1) a pair of rostral clusters, and (2) a caudal and medially located cluster. We also identified that a subset of GHSR neurons of the caudal NTS are GABAergic. Finally, we found that rostral NTS GHSR neurons increase the levels of the marker of neuronal activation c-Fos in mice exposed to fasting/refeeding or high-fat diet bingeing protocols, while caudal NTS GHSR neurons increase the levels of c-Fos in mice exposed to gastric distension or LiCl-induced malaise protocols. Thus, current data provide evidence that ghrelin receptor signaling seems to target segregated clusters of neurons within the NTS that, in turn, may be activated by different stimuli.


Subject(s)
GABAergic Neurons/metabolism , Medulla Oblongata/metabolism , Receptors, Ghrelin/metabolism , Solitary Nucleus/metabolism , Animals , Female , Fluorescence , Ghrelin/administration & dosage , Ghrelin/metabolism , Green Fluorescent Proteins/metabolism , Male , Mice , Mice, Inbred C57BL , Mice, Transgenic , Phenotype , Proto-Oncogene Proteins c-fos/metabolism , Signal Transduction
5.
Endocrinology ; 158(5): 1436-1449, 2017 05 01.
Article in English | MEDLINE | ID: mdl-28204197

ABSTRACT

Ghrelin is known to act on the area postrema (AP), a sensory circumventricular organ located in the medulla oblongata that regulates a variety of important physiological functions. However, the neuronal targets of ghrelin in the AP and their potential role are currently unknown. In this study, we used wild-type and genetically modified mice to gain insights into the neurons of the AP expressing the ghrelin receptor [growth hormone secretagogue receptor (GHSR)] and their role. We show that circulating ghrelin mainly accesses the AP but not to the adjacent nucleus of the solitary tract. Also, we show that both peripheral administration of ghrelin and fasting induce an increase of c-Fos, a marker of neuronal activation, in GHSR-expressing neurons of the AP, and that GHSR expression is necessary for the fasting-induced activation of AP neurons. Additionally, we show that ghrelin-sensitive neurons of the AP are mainly γ-aminobutyric acid (GABA)ergic, and that an intact AP is required for ghrelin-induced gastric emptying. Overall, we show that the capacity of circulating ghrelin to acutely induce gastric emptying in mice requires the integrity of the AP, which contains a population of GABA neurons that are a target of plasma ghrelin.


Subject(s)
Area Postrema/physiology , GABAergic Neurons/physiology , Ghrelin/blood , Animals , Area Postrema/drug effects , Fasting , GABAergic Neurons/drug effects , Gastric Emptying/drug effects , Ghrelin/administration & dosage , Ghrelin/metabolism , Male , Mice , Proto-Oncogene Proteins c-fos/genetics , Receptors, Ghrelin/genetics , Receptors, Ghrelin/metabolism , gamma-Aminobutyric Acid/metabolism
6.
Psychoneuroendocrinology ; 67: 27-39, 2016 May.
Article in English | MEDLINE | ID: mdl-26874559

ABSTRACT

Previous work has established that the hormone ghrelin engages the hypothalamic-pituitary-adrenal neuroendocrine axis via activation of corticotropin-releasing factor (CRF) neurons of the hypothalamic paraventricular nucleus (PVN). The neuronal circuitry that mediates this effect of ghrelin is currently unknown. Here, we show that ghrelin-induced activation of PVN CRF neurons involved inhibition of γ-aminobutyric acid (GABA) inputs, likely via ghrelin binding sites that were localized at GABAergic terminals within the PVN. While ghrelin activated PVN CRF neurons in the presence of neuropeptide Y (NPY) receptor antagonists or in arcuate nucleus (ARC)-ablated mice, it failed to do it so in mice with ghrelin receptor expression limited to ARC agouti gene related protein (AgRP)/NPY neurons. These data support the notion that ghrelin activates PVN CRF neurons via inhibition of local GABAergic tone, in an ARC-independent manner. Furthermore, these data suggest that the neuronal circuits mediating ghrelin's orexigenic action vs. its role as a stress signal are anatomically dissociated.


Subject(s)
Arcuate Nucleus of Hypothalamus/drug effects , Corticotropin-Releasing Hormone/metabolism , Ghrelin/pharmacology , Neurons/drug effects , Neurons/metabolism , Animals , Arginine/analogs & derivatives , Arginine/pharmacology , Corticosterone/blood , GABA Antagonists , Gene Knockdown Techniques , Ghrelin/administration & dosage , Infusions, Intraventricular , Male , Mice , Muscimol/pharmacology , Neuropeptide Y/antagonists & inhibitors , Paraventricular Hypothalamic Nucleus/metabolism , Receptors, Ghrelin/drug effects , Receptors, Ghrelin/genetics , Receptors, Ghrelin/metabolism , gamma-Aminobutyric Acid/metabolism
7.
Biol Psychiatry ; 72(5): 347-53, 2012 Sep 01.
Article in English | MEDLINE | ID: mdl-22458951

ABSTRACT

The peptide hormone ghrelin acts in the central nervous system as a potent orexigenic signal. Not only is ghrelin recognized as playing an important role in feeding circuits traditionally thought of as affecting body weight homeostasis, but also an accumulating number of scientific studies have identified ghrelin as being a key regulator of reward-based, hedonic eating behaviors. In the current article, we review ghrelin's orexigenic actions, the evidence linking ghrelin to food reward behavior, potential mechanisms by which ghrelin mediates reward-based eating behavior, and those studies suggesting an obligatory role for ghrelin in the changed eating behaviors induced by stress.


Subject(s)
Body Weight/physiology , Feeding Behavior/physiology , Ghrelin/metabolism , Receptors, G-Protein-Coupled/physiology , Reward , Stress, Psychological , Animals , Dopamine/metabolism , Feeding Behavior/psychology , Humans , Limbic System/physiology , Neural Pathways/physiology , Rats
8.
PLoS One ; 7(2): e31462, 2012.
Article in English | MEDLINE | ID: mdl-22363652

ABSTRACT

Ghrelin is a stomach-derived hormone that regulates food intake and neuroendocrine function by acting on its receptor, GHSR (Growth Hormone Secretagogue Receptor). Recent evidence indicates that a key function of ghrelin is to signal stress to the brain. It has been suggested that one of the potential stress-related ghrelin targets is the CRF (Corticotropin-Releasing Factor)-producing neurons of the hypothalamic paraventricular nucleus, which secrete the CRF neuropeptide into the median eminence and activate the hypothalamic-pituitary-adrenal axis. However, the neural circuits that mediate the ghrelin-induced activation of this neuroendocrine axis are mostly uncharacterized. In the current study, we characterized in vivo the mechanism by which ghrelin activates the hypophysiotropic CRF neurons in mice. We found that peripheral or intra-cerebro-ventricular administration of ghrelin strongly activates c-fos--a marker of cellular activation--in CRF-producing neurons. Also, ghrelin activates CRF gene expression in the paraventricular nucleus of the hypothalamus and the hypothalamic-pituitary-adrenal axis at peripheral level. Ghrelin administration directly into the paraventricular nucleus of the hypothalamus also induces c-fos within the CRF-producing neurons and the hypothalamic-pituitary-adrenal axis, without any significant effect on the food intake. Interestingly, dual-label immunohistochemical analysis and ghrelin binding studies failed to show GHSR expression in CRF neurons. Thus, we conclude that ghrelin activates hypophysiotropic CRF neurons, albeit indirectly.


Subject(s)
Corticotropin-Releasing Hormone/metabolism , Ghrelin/pharmacology , Hypothalamo-Hypophyseal System/cytology , Hypothalamo-Hypophyseal System/drug effects , Neurons/cytology , Neurons/drug effects , Animals , Ghrelin/administration & dosage , Male , Mice , Mice, Inbred C57BL , Microinjections , Paraventricular Hypothalamic Nucleus/cytology , Paraventricular Hypothalamic Nucleus/drug effects , Pituitary-Adrenal System/cytology , Pituitary-Adrenal System/drug effects , Protein Binding/drug effects , Receptors, Ghrelin/metabolism
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