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Evidence that ventilatory rhythmogenesis in the frog involves two distinct neuronal oscillators.
Wilson, R J A; Vasilakos, K; Harris, M B; Straus, C; Remmers, J E.
Affiliation
  • Wilson RJ; Department of Medical Physiology, University of Calgary, 330 Hospital Drive, N.W., Calgary, Alberta, Canada T2N 4N1. wilsonr@ucalgary.ca
J Physiol ; 540(Pt 2): 557-70, 2002 Apr 15.
Article in En | MEDLINE | ID: mdl-11956343
ABSTRACT
In Rana catesbeiana the upper airways are used for two distinct yet highly coordinated ventilatory behaviours buccal ventilation and lung inflation cycles. How these behaviours are generated and coordinated is unknown. The purpose of this study was to identify putative rhythmogenic brainstem loci involved in these ventilatory behaviours. We surveyed the isolated postmetamorphic brainstem to determine sites where local depolarization, produced by microinjecting the non-NMDA glutamate receptor agonist, AMPA, augmented the ventilatory motor patterns. Two sites were identified a caudal site, at the level of cranial nerve (CN) X, where AMPA injections caused increased buccal burst frequency but abolished lung bursts, and a rostral site, between the levels of CN VIII and IX, where injections increased the frequency of both types of ventilatory bursts. These two sites were further examined using GABA microinjections to locally inhibit cells. GABA injected into the caudal site suppressed the buccal rhythm but the lung rhythm continued, albeit at a different frequency. When GABA was injected into the rostral site the lung bursts were abolished but the buccal rhythm continued. When the two sites were physically separated by transection, both rostral and caudal brainstem sections were capable of rhythmogenesis. The results suggest the respiratory network within the amphibian brainstem is composed of at least two distinct but interacting oscillators, the buccal and lung oscillators. These putative oscillators may provide a promising experimental model for studying coupled oscillators in vertebrates.
Subject(s)

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Respiratory Physiological Phenomena / Respiratory Mechanics / Neurons Limits: Animals Language: En Journal: J Physiol Year: 2002 Document type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Respiratory Physiological Phenomena / Respiratory Mechanics / Neurons Limits: Animals Language: En Journal: J Physiol Year: 2002 Document type: Article