Literature DB >> 8570853

Geometry, kinetics and plasticity of release and clearance of ATP and noradrenaline as sympathetic cotransmitters: roles for the neurogenic contraction.

L Stjärne1, E Stjärne.   

Abstract

The paper compares the microphysiology of sympathetic neuromuscular transmission in three model preparations: the guinea-pig and mouse vas deferens and rat tail artery. The first section describes the quantal release of ATP and noradrenaline from individual sites. The data are proposed to support a string model in which: (i) most sites (> or = 99%) ignore the nerve impulse and a few (< or = 1%) release a single quantum of ATP and noradrenaline; (ii) the probability of monoquantal release is extremely non-uniform; (iii) high probability varicosities form 'active' strings; and (iv) an impulse train causes repeated quantal release from these sites. Analogy with molecular mechanisms regulating transmitter exocytosis in other systems is proposed to imply that coincidence of at least two factors at the active zone, Ca2+ and specific cytosolic protein(s), may be required to remove a 'fusion clamp', form a 'fusion complex' and trigger exocytosis of a sympathetic transmitter quantum, and that the availability of these proteins may regulate the release probability. The second section shows that clearance of noradrenaline in rat tail artery is basically > or = 30-fold slower than of co-released ATP, and that saturation of local reuptake and binding to local buffering sites maintain the noradrenaline concentration at the receptors, in spite of a profound decline in per pulse release during high frequency trains. The third section describes differences in the strategies by which mouse vas deferens and rat tail artery use ATP and noradrenaline to trigger and maintain the neurogenic contraction.

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Year:  1995        PMID: 8570853     DOI: 10.1016/0301-0082(95)00018-q

Source DB:  PubMed          Journal:  Prog Neurobiol        ISSN: 0301-0082            Impact factor:   11.685


  12 in total

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Review 2.  Neurotransmitter release mechanisms in sympathetic neurons: past, present, and future perspectives.

Authors:  V M Jackson; T C Cunnane
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5.  Antioxidant treatment restores prejunctional regulation of purinergic transmission in mesenteric arteries of deoxycorticosterone acetate-salt hypertensive rats.

Authors:  S L Demel; H Dong; G M Swain; X Wang; D L Kreulen; J J Galligan
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6.  Effects of heptanol on the neurogenic and myogenic contractions of the guinea-pig vas deferens.

Authors:  K Venkateswarlu; S Y Dange; R Manchanda
Journal:  Br J Pharmacol       Date:  1999-01       Impact factor: 8.739

7.  Post- and prejunctional consequences of ecto-ATPase inhibition: electrical and contractile studies in guinea-pig vas deferens.

Authors:  P Ghildyal; D Palani; R Manchanda
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8.  Local elementary purinergic-induced Ca2+ transients: from optical mapping of nerve activity to local Ca2+ signaling networks.

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9.  Purinergic receptors in the splanchnic circulation.

Authors:  Manuela Morato; Teresa Sousa; António Albino-Teixeira
Journal:  Purinergic Signal       Date:  2008-04-29       Impact factor: 3.765

10.  Alterations in sympathetic neuroeffector transmission to mesenteric arteries but not veins in DOCA-salt hypertension.

Authors:  Jinwoo Park; James J Galligan; Gregory D Fink; Greg M Swain
Journal:  Auton Neurosci       Date:  2009-11-13       Impact factor: 3.145

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