Literature DB >> 24473434

Estradiol modulates Kiss1 neuronal response to ghrelin.

Renata Frazao1, Heather M Dungan Lemko, Regina P da Silva, Dhirender V Ratra, Charlotte E Lee, Kevin W Williams, Jeffrey M Zigman, Carol F Elias.   

Abstract

Ghrelin is a metabolic signal regulating energy homeostasis. Circulating ghrelin levels rise during starvation and fall after a meal, and therefore, ghrelin may function as a signal of negative energy balance. Ghrelin may also act as a modulator of reproductive physiology, as acute ghrelin administration suppresses gonadotropin secretion and inhibits the neuroendocrine reproductive axis. Interestingly, ghrelin's effect in female metabolism varies according to the estrogen milieu predicting an interaction between ghrelin and estrogens, likely at the hypothalamic level. Here, we show that ghrelin receptor (GHSR) and estrogen receptor-α (ERα) are coexpressed in several hypothalamic sites. Higher levels of circulating estradiol increased the expression of GHSR mRNA and the coexpression of GHSR mRNA and ERα selectively in the arcuate nucleus (ARC). Subsets of preoptic and ARC Kiss1 neurons coexpressed GHSR. Increased colocalization was observed in ARC Kiss1 neurons of ovariectomized estradiol-treated (OVX + E₂; 80%) compared with ovariectomized oil-treated (OVX; 25%) mice. Acute actions of ghrelin on ARC Kiss1 neurons were also modulated by estradiol; 75 and 22% of Kiss1 neurons of OVX + E₂ and OVX mice, respectively, depolarized in response to ghrelin. Our findings indicate that ghrelin and estradiol may interact in several hypothalamic sites. In the ARC, high levels of E₂ increase GHSR mRNA expression, modifying the colocalization rate with ERα and Kiss1 and the proportion of Kiss1 neurons acutely responding to ghrelin. Our findings indicate that E₂ alters the responsiveness of kisspeptin neurons to metabolic signals, potentially acting as a critical player in the metabolic control of the reproductive physiology.

Entities:  

Keywords:  growth hormone secretagogue receptor; hypothalamus; kisspeptin; metabolism; reproduction

Mesh:

Substances:

Year:  2014        PMID: 24473434      PMCID: PMC3948981          DOI: 10.1152/ajpendo.00211.2013

Source DB:  PubMed          Journal:  Am J Physiol Endocrinol Metab        ISSN: 0193-1849            Impact factor:   4.310


  55 in total

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3.  Effects of ghrelin upon gonadotropin-releasing hormone and gonadotropin secretion in adult female rats: in vivo and in vitro studies.

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4.  RNAi-mediated silencing of estrogen receptor {alpha} in the ventromedial nucleus of hypothalamus abolishes female sexual behaviors.

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5.  Coexpression of dynorphin and neurokinin B immunoreactivity in the rat hypothalamus: Morphologic evidence of interrelated function within the arcuate nucleus.

Authors:  Michelle C Burke; Penny A Letts; Sally J Krajewski; Naomi E Rance
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6.  Mouse cortical inhibitory neuron type that coexpresses somatostatin and calretinin.

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7.  Comparative analysis of the effects of ghrelin and unacylated ghrelin on luteinizing hormone secretion in male rats.

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8.  Decrease in luteinizing hormone pulse frequency during a five-hour peripheral ghrelin infusion in the ovariectomized rhesus monkey.

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9.  Endogenous gamma-aminobutyric acid can excite gonadotropin-releasing hormone neurons.

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10.  Regulation of Kiss1 gene expression in the brain of the female mouse.

Authors:  Jeremy T Smith; Matthew J Cunningham; Emilie F Rissman; Donald K Clifton; Robert A Steiner
Journal:  Endocrinology       Date:  2005-05-26       Impact factor: 4.736

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  28 in total

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2.  AMPKα2 in Kiss1 Neurons Is Required for Reproductive Adaptations to Acute Metabolic Challenges in Adult Female Mice.

Authors:  Marcio A Torsoni; Beatriz C Borges; Jessica L Cote; Susan J Allen; Erica Mahany; David Garcia-Galiano; Carol F Elias
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3.  Hypothalamic action of phoenixin to control reproductive hormone secretion in females: importance of the orphan G protein-coupled receptor Gpr173.

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4.  Ghrelin's control of food reward and body weight in the lateral hypothalamic area is sexually dimorphic.

Authors:  Lorena López-Ferreras; Jennifer E Richard; Rozita H Anderberg; Fredrik H Nilsson; Kajsa Olandersson; Scott E Kanoski; Karolina P Skibicka
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5.  17β-Estradiol Increases Arcuate KNDy Neuronal Sensitivity to Ghrelin Inhibition of the M-Current in Female Mice.

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6.  ERα in Tac2 Neurons Regulates Puberty Onset in Female Mice.

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7.  Differential gene regulation of GHSR signaling pathway in the arcuate nucleus and NPY neurons by fasting, diet-induced obesity, and 17β-estradiol.

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Review 10.  Minireview: Metabolic control of the reproductive physiology: insights from genetic mouse models.

Authors:  Nicole Bellefontaine; Carol F Elias
Journal:  Horm Behav       Date:  2014-04-16       Impact factor: 3.587

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