Literature DB >> 21047952

Pressor effect of apelin-13 in the rostral ventrolateral medulla: role of NAD(P)H oxidase-derived superoxide.

Fanrong Yao1, Amit Modgil, Qi Zhang, Ajeeth Pingili, Neha Singh, Stephen T O'Rourke, Chengwen Sun.   

Abstract

Microinjection of apelin-13 into the rostral ventrolateral medulla (RVLM) in the brainstem increases blood pressure in rats. In the present study, we tested the hypotheses that apelin-13 directly stimulates neuronal activity in neurons cultured from the brainstem and that NAD(P)H oxidase-derived reactive oxygen species are involved in this action of apelin-13. Microinjection of apelin-13 into the RVLM resulted in increases in arterial pressure and in renal sympathetic nerve activity in Sprague-Dawley rats. The pressor effect of apelin-13 was attenuated by the specific NAD(P)H-oxidase inhibitor gp91ds-tat. In neurons cultured from the ventral brainstem, spontaneous action potentials were recorded using current-clamp recording. Superfusion of neurons with apelin-13 (100 nM) increased the neuronal firing rate from 0.79 ± 0.14 to 1.45 ± 0.26 Hz (n = 7, P < 0.01) in angiotensin II receptor-like 1-positive neurons, identified with single-cell reverse transcriptase-polymerase chain reaction. Neither the angiotensin II type 1 receptor antagonist losartan nor the angiotensin II type 2 receptor antagonist 1-[[4-(dimethylamino)-3-methylphenyl[methyl]-5-(diphenylacetyl)-4,5,6,7-tetrahydro-1H-imidazo[4,5-c]pyridine-6-carboxylic acid ditrifluoroacetate (PD123319) altered the positive chronotropic effect of apelin-13. Pretreatment of cells with either the reactive oxygen species scavenger superoxide dismutase [polyethylene glycol-superoxide dismutase (PEG-SOD), 25 U/ml] or with gp91ds-tat significantly attenuated the chronotropic action of apelin-13. PEG-SOD and gp91ds-tat alone had no effect on basal neuronal firing. In addition, apelin-13 significantly increased NAD(P)H oxidase activity and elevated intracellular superoxide levels in neuronal cultures. The superoxide generator xanthine-xanthine oxidase also increased neuronal activity in neurons, mimicking the neuronal response to apelin-13. These observations provide the first evidence that apelin-13 directly increases neuronal activity via stimulation of NAD(P)H oxidase-derived superoxide, a cellular signaling mechanism that may be involved in the pressor effect of apelin-13 in the RVLM.

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Year:  2010        PMID: 21047952      PMCID: PMC3033721          DOI: 10.1124/jpet.110.174102

Source DB:  PubMed          Journal:  J Pharmacol Exp Ther        ISSN: 0022-3565            Impact factor:   4.030


  33 in total

1.  Physiological role of a novel neuropeptide, apelin, and its receptor in the rat brain.

Authors:  A Reaux; N De Mota; I Skultetyova; Z Lenkei; S El Messari; K Gallatz; P Corvol; M Palkovits; C Llorens-Cortès
Journal:  J Neurochem       Date:  2001-05       Impact factor: 5.372

2.  Molecular and functional characteristics of APJ. Tissue distribution of mRNA and interaction with the endogenous ligand apelin.

Authors:  M Hosoya; Y Kawamata; S Fukusumi; R Fujii; Y Habata; S Hinuma; C Kitada; S Honda; T Kurokawa; H Onda; O Nishimura; M Fujino
Journal:  J Biol Chem       Date:  2000-07-14       Impact factor: 5.157

3.  The effects of centrally administered apelin-13 on food intake, water intake and pituitary hormone release in rats.

Authors:  Shahrad Taheri; Kevin Murphy; Mark Cohen; Elizabeth Sujkovic; Adam Kennedy; Waljit Dhillo; Catherine Dakin; Arshia Sajedi; Mohammad Ghatei; Stephen Bloom
Journal:  Biochem Biophys Res Commun       Date:  2002-03-15       Impact factor: 3.575

4.  Characterization of apelin, the ligand for the APJ receptor.

Authors:  D K Lee; R Cheng; T Nguyen; T Fan; A P Kariyawasam; Y Liu; D H Osmond; S R George; B F O'Dowd
Journal:  J Neurochem       Date:  2000-01       Impact factor: 5.372

5.  Cloning, pharmacological characterization and brain distribution of the rat apelin receptor.

Authors:  N De Mota ; Z Lenkei; C Llorens-Cortès
Journal:  Neuroendocrinology       Date:  2000-12       Impact factor: 4.914

6.  Superoxide mediates the actions of angiotensin II in the central nervous system.

Authors:  Matthew C Zimmerman; Eric Lazartigues; Julie A Lang; Puspha Sinnayah; Iman M Ahmad; Douglas R Spitz; Robin L Davisson
Journal:  Circ Res       Date:  2002-11-29       Impact factor: 17.367

7.  Distribution of mRNA encoding B78/apj, the rat homologue of the human APJ receptor, and its endogenous ligand apelin in brain and peripheral tissues.

Authors:  A M O'Carroll; T L Selby; M Palkovits; S J Lolait
Journal:  Biochim Biophys Acta       Date:  2000-06-21

8.  Activation of NADPH oxidase during progression of cardiac hypertrophy to failure.

Authors:  Jian-Mei Li; Nick P Gall; David J Grieve; Mingyou Chen; Ajay M Shah
Journal:  Hypertension       Date:  2002-10       Impact factor: 10.190

9.  Apelin, the novel endogenous ligand of the orphan receptor APJ, regulates cardiac contractility.

Authors:  István Szokodi; Pasi Tavi; Gábor Földes; Sari Voutilainen-Myllylä; Mika Ilves; Heikki Tokola; Sampsa Pikkarainen; Jarkko Piuhola; Jaana Rysä; Miklós Tóth; Heikki Ruskoaho
Journal:  Circ Res       Date:  2002-09-06       Impact factor: 17.367

10.  Distribution of apelin-synthesizing neurons in the adult rat brain.

Authors:  A Reaux; K Gallatz; M Palkovits; C Llorens-Cortes
Journal:  Neuroscience       Date:  2002       Impact factor: 3.590

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  8 in total

Review 1.  Novel transmitters in brain stem vagal neurocircuitry: new players on the pitch.

Authors:  Mehmet Bülbül; R Alberto Travagli
Journal:  Am J Physiol Gastrointest Liver Physiol       Date:  2018-03-29       Impact factor: 4.052

Review 2.  Vascular effects of apelin: Mechanisms and therapeutic potential.

Authors:  Amreen Mughal; Stephen T O'Rourke
Journal:  Pharmacol Ther       Date:  2018-05-25       Impact factor: 12.310

Review 3.  Apelinergic System Structure and Function.

Authors:  Kyungsoo Shin; Calem Kenward; Jan K Rainey
Journal:  Compr Physiol       Date:  2017-12-12       Impact factor: 9.090

4.  Hypothalamic apelin/reactive oxygen species signaling controls hepatic glucose metabolism in the onset of diabetes.

Authors:  Anne Drougard; Thibaut Duparc; Xavier Brenachot; Lionel Carneiro; Alexandra Gouazé; Audren Fournel; Lucie Geurts; Thomas Cadoudal; Anne-Catherine Prats; Luc Pénicaud; Didier Vieau; Jean Lesage; Corinne Leloup; Alexandre Benani; Patrice D Cani; Philippe Valet; Claude Knauf
Journal:  Antioxid Redox Signal       Date:  2013-09-18       Impact factor: 8.401

5.  Apelin-13 inhibits gastric motility through vagal cholinergic pathway in rats.

Authors:  Mehmet Bülbül; Osman Sinen; Melahat Gök; R Alberto Travagli
Journal:  Am J Physiol Gastrointest Liver Physiol       Date:  2017-10-12       Impact factor: 4.052

6.  Apelin and pulmonary hypertension.

Authors:  Charlotte U Andersen; Ole Hilberg; Søren Mellemkjær; Jens E Nielsen-Kudsk; U Simonsen
Journal:  Pulm Circ       Date:  2011 Jul-Sep       Impact factor: 3.017

7.  Apelin-13 inhibits large-conductance Ca2+-activated K+ channels in cerebral artery smooth muscle cells via a PI3-kinase dependent mechanism.

Authors:  Amit Modgil; Lirong Guo; Stephen T O'Rourke; Chengwen Sun
Journal:  PLoS One       Date:  2013-12-26       Impact factor: 3.240

8.  Vasopressin V1a receptors mediate the hypertensive effects of [Pyr1 ]apelin-13 in the rat rostral ventrolateral medulla.

Authors:  Philip R Griffiths; Stephen J Lolait; Louise E Harris; Julian F R Paton; Anne-Marie O'Carroll
Journal:  J Physiol       Date:  2017-04-21       Impact factor: 5.182

  8 in total

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