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J Appl Physiol 96: 260-270, 2004. First published September 12, 2003; doi:10.1152/japplphysiol.00523.2003
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A GABAergic inhibitory microcircuit controlling cholinergic outflow to the airways

Constance T. Moore,1 Christopher G. Wilson,2 Catherine A. Mayer,2 Sandra S. Acquah,1 V. John Massari,3 and Musa A. Haxhiu1,2,4

Departments of 1Physiology and Biophysics and 3Pharmacology, Howard University College of Medicine, Washington, DC 20059; and Departments of 2Pediatrics and 4Anatomy, Case Western Reserve University School of Medicine, Cleveland, Ohio 44106

Submitted 15 May 2003 ; accepted in final form 8 September 2003

GABA is the main inhibitory neurotransmitter that participates in the regulation of cholinergic outflow to the airways. We have tested the hypothesis that a monosynaptic GABAergic circuit modulates the output of airway-related vagal preganglionic neurons (AVPNs) in the rostral nucleus ambiguus by using a dual-labeling electron microscopic method combining immunocytochemistry for glutamic acid decarboxylase (GAD) with retrograde tracing from the trachea. We also determined the effects of blockade of GABAA receptors on airway smooth muscle tone. The results showed that retrogradely labeled AVPNs received a significant GAD-immunoreactive (GAD-IR) terminal input. Out of a pooled total of 3,161 synaptic contacts with retrogradely labeled somatic and dendritic profiles, 20.2% were GAD-IR. GAD-IR terminals formed significantly more axosomatic synapses than axodendritic synapses (P < 0.02). A dense population of GABAergic synaptic contacts on AVPNs provides a morphological basis for potent physiological effects of GABA on the excitability of AVPNs. GAD-IR terminals formed exclusively symmetric synaptic specializations. GAD-IR terminals were significantly larger (P < 0.05) in both length and width than unlabeled terminals synapsing on AVPNs. Therefore, the structural characteristics of certain nerve terminals may be closely correlated with their function. Pharmacological blockade of GABAA receptors within the rostral nucleus ambiguus increased activity of putative AVPNs and airway smooth muscle tone. We conclude that a tonically active monosynaptic GABAergic circuit utilizing symmetric synapses regulates the discharge of AVPNs.

airway-related vagal preganglionic neurons; central control of airways; ferret; synaptic neurotransmission; tonic GABAergic inhibition; ultrastructure



Address for reprint requests and other correspondence: M. A. Haxhiu, Dept. of Physiology and Biophysics, Howard Univ. College of Medicine, 520 W St., NW, Washington, DC 20059 (E-mail: mhaxhiu{at}howard.edu).




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