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PMID: 9925881 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

The role of N-, Q- and R-type Ca2+ channels in feedback inhibition of ACh release from rat basal forebrain neurones.

The Journal of physiology ·Vol. 515 ( Pt 1) ·1999-02-15 ·Pages 93-107

Allen TG

Abstract

1. The Ca2+ channel subtypes controlling ACh release from basal forebrain neurones and the ionic basis underlying muscarinic receptor-mediated autoinhibition were studied using skeletal myoballs to detect ACh release from individual rat basal forebrain neurones in culture. 2. Somatic Ca2+ currents evoked using a simulated action potential waveform revealed that Ca2+ entry was primarily through N-, Q- and to a lesser extent R-, T- and L-type Ca2+ channels. 3. Muscarine (10 microM) inhibited N- and Q- but not R-, T- or L-type somatic Ca2+ channels. Agonist inhibition was totally blocked by pre-treatment with pertussis toxin (500 ng ml-1). 4. ACh release from discrete sites along basal forebrain neurites (1. 2 mM extracellular Ca2+) could be largely abolished by blocking Ca2+ entry through either N-type or Q-type Ca2+ channels. Inhibition of Ca2+ entry through L- or T-type channels had no effect upon release. Following inhibition of either N- or Q-type Ca2+ channels, release could be restored to near control levels by raising [Ca2+]o. After selectively blocking N-, Q-, L- and T-type channels, low levels of release could still be evoked as a result of Ca2+ entry through R-type Ca2+ channels. 5. Muscarinic receptor activation reversibly inhibited ACh release due to Ca2+ entry through N-, Q- and R-type Ca2+ channels. In contrast, inhibition of inwardly rectifying K+ channels using Ba2+ (3-10 microM) or substance P (0.03-0.1 microM), or block of SK or BK Ca2+-activated K+ channels with apamin (100 nM) or charbydotoxin (100 nM) respectively, had no effect upon either ACh release or its modulation by muscarinic agonists. 6. These results show that ACh release from individual release sites on basal forebrain neurones is controlled by multiple Ca2+ channel subtypes with overlapping Ca2+ microdomains and that autoinhibition of release results from M2 muscarinic receptor-mediated inhibition of these presynaptic Ca2+ channels rather than as a consequence of K+ channel activation.

MeSH Terms
Acetylcholine/metabolism Action Potentials/physiology Animals Calcium/metabolism Calcium Channel Blockers/pharmacology Calcium Channels/physiology Calcium Channels, N-Type Electric Stimulation Electrophysiology Feedback/physiology In Vitro Techniques Ion Channel Gating/drug effects Membrane Potentials/physiology Muscarinic Agonists/pharmacology Neurons/metabolism Patch-Clamp Techniques Potassium Channel Blockers Potassium Channels/agonists,metabolism Prosencephalon/cytology,metabolism Rats Receptors, Muscarinic/metabolism
Chemicals
Calcium Channel Blockers Calcium Channels Calcium Channels, N-Type Muscarinic Agonists Potassium Channel Blockers Potassium Channels Receptors, Muscarinic voltage-dependent calcium channel (P-Q type) Acetylcholine Calcium
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
Allen T G
Department of Pharmacology, University College London, Gower Street, London WC1E 6BT, UK. [email protected]
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Article Info
Journal
The Journal of physiology
Abbr.
J Physiol
ISSN
0022-3751
Published
1999-02-15
Pages
93-107
Language
English
Region
England
NLM ID
0266262
PMCID
PMC2269139
Subset
IM
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