Literature DB >> 12522097

Tachykinin NK3 and NK1 receptor activation elicits secretion from porcine airway submucosal glands.

Jonathan E Phillips1, John A Hey, Michel R Corboz.   

Abstract

1 We presently characterized the tachykinin receptor subtypes, using tachykinin receptor agonists and selective antagonists, that induce submucosal gland fluid flux (J(G)) from porcine tracheal explants with the hillocks technique. We also investigated the effects of the tachykinin receptor agonists on the electrophysiologic parameters of the tracheal epithelium in Ussing chambers. 2 The NK(1) tachykinin receptor agonist substance P (SP, 1 microM) and the NK(3) tachykinin receptor agonist [MePhe(7)]neurokinin B ([MePhe(7)]NKB, 1 microM) induced gland fluid fluxes of 0.29+/-0.03 microl min(-1) cm(-2) (n=26) and 0.36+/-0.05 microl min(-1) cm(-2) (n=24), respectively; while the NK(2) tachykinin receptor agonist [betaAla(8)]neurokinin A (4-10) ([betaAla(8)]NKA (4-10), 1 microM) had no effect on J(G) (n=10). 3 The NK(1) receptor antagonist CP99994 (1 microM, n=9) blocked 93% of the SP-induced J(G), whereas the NK(3) receptor antagonist SB223412 (1 microM, n=12) had no effect on the SP-induced J(G). However, SB223412 (1 microM, n=9) blocked 89% of the [MePhe(7)]NKB-induced J(G) while CP99994 (1 microM, n=10) did not affect the [MePhe(7)]NKB-induced J(G). The NK(2) receptor antagonist SR48968 (1 microM) did not block the J(G) induced by either the NK(1) (n=4) or NK(3) (n=13) receptor agonists. 4 The nicotinic ganglionic acetylcholine receptor antagonist hexamethonium (1 microM) and the muscarinic acetylcholine receptor antagonist atropine (1 microM) also decreased the NK(3) receptor agonist-induced J(G) by 67% (n=10) and 71% (n=12), respectively. 5 The potential difference (PD), short-circuit current (I(SC)), and membrane resistance (R(M)) of the porcine tracheal epithelial membranes were not significantly affected by any of the neurokinin agonists or antagonists (1 microM, basolateral) used in this study, although SP and [betaAla(8)]NKA (4-10) induced a slight transient epithelial hyperpolarization. 6 These data suggest that NK(1) and NK(3) receptors induce porcine airway gland secretion by different mechanisms and that the NK(3) receptor agonists induced secretion is likely due to activation of prejunctional NK(3) receptors on parasympathetic nerves, resulting in acetylcholine-release. We conclude that tachykinin receptor antagonists may have therapeutic potential in diseases with pathophysiological mucus hypersecretion such as asthma and chronic bronchitis.

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Year:  2003        PMID: 12522097      PMCID: PMC1573655          DOI: 10.1038/sj.bjp.0705029

Source DB:  PubMed          Journal:  Br J Pharmacol        ISSN: 0007-1188            Impact factor:   8.739


  51 in total

1.  Tachykinin receptor types: Classification and membrane signalling mechanisms.

Authors:  S Guard; S P Watson
Journal:  Neurochem Int       Date:  1991       Impact factor: 3.921

2.  Tachykinin control of ferret airways: mucus secretion, bronchoconstriction and receptor mapping.

Authors:  S Meini; J C Mak; J A Rohde; D F Rogers
Journal:  Neuropeptides       Date:  1993-02       Impact factor: 3.286

3.  Effect of the long-acting tachykinin NK(1) receptor antagonist MEN 11467 on tracheal mucus secretion in allergic ferrets.

Authors:  S Khan; Y C Liu; A M Khawaja; S Manzini; D F Rogers
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4.  Substance P receptor-mediated secretion of respiratory glycoconjugate from feline airways in vitro.

Authors:  J D Lundgren; C J Wiedermann; C Logun; J Plutchok; M Kaliner; J H Shelhamer
Journal:  Exp Lung Res       Date:  1989       Impact factor: 2.459

5.  Nonpeptide tachykinin receptor antagonists: I. Pharmacological and pharmacokinetic characterization of SB 223412, a novel, potent and selective neurokinin-3 receptor antagonist.

Authors:  H M Sarau; D E Griswold; W Potts; J J Foley; D B Schmidt; E F Webb; L D Martin; M E Brawner; N A Elshourbagy; A D Medhurst; G A Giardina; D W Hay
Journal:  J Pharmacol Exp Ther       Date:  1997-06       Impact factor: 4.030

Review 6.  The airway mucociliary system.

Authors:  R J Phipps
Journal:  Int Rev Physiol       Date:  1981

7.  Autoradiographic localization of substance P binding sites in guinea-pig airways.

Authors:  D B Hoover; J C Hancock
Journal:  J Auton Nerv Syst       Date:  1987-05

8.  Regional bioelectric properties of porcine airway epithelium.

Authors:  S T Ballard; S M Schepens; J C Falcone; G A Meininger; A E Taylor
Journal:  J Appl Physiol (1985)       Date:  1992-11

9.  Substance P (NK1)- and neurokinin A (NK2)-receptor gene expression in inflammatory airway diseases.

Authors:  T R Bai; D Zhou; T Weir; B Walker; R Hegele; S Hayashi; K McKay; G P Bondy; T Fong
Journal:  Am J Physiol       Date:  1995-09

10.  Effects of tachykinins on mucus secretion in human bronchi in vitro.

Authors:  D F Rogers; B Aursudkij; P J Barnes
Journal:  Eur J Pharmacol       Date:  1989-12-19       Impact factor: 4.432

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8.  PAR-2-activated secretion by airway gland serous cells: role for CFTR and inhibition by Pseudomonas aeruginosa.

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