Literature DB >> 25952282

Three brainstem areas involved in respiratory rhythm generation in bullfrogs.

Mufaddal I Baghdadwala1, Maryana Duchcherer1, Jenny Paramonov1, Richard J A Wilson1.   

Abstract

For most multiphasic motor patterns, rhythm and pattern are produced by the same circuit elements. For respiration, however, these functions have long been assumed to occur separately. In frogs, the ventilatory motor pattern produced by the isolated brainstem consists of buccal and biphasic lung bursts. Previously, two discrete necessary and sufficient sites for lung and buccal bursts were identified. Here we identify a third site, the Priming Area, important for and having neuronal activity correlated with the first phase of biphasic lung bursts. As each site is important for burst generation of a separate phase, we suggest each major phase of ventilation is produced by an anatomically distinct part of an extensive brainstem network. Embedding of discrete circuit elements producing major phases of respiration within an extensive rhythmogenic brainstem network may be a shared architectural characteristic of vertebrates. ABSTRACT: Ventilation in mammals consists of at least three distinct phases: inspiration, post-inspiration and late-expiration. While distinct brainstem rhythm generating and pattern forming networks have long been assumed, recent data suggest the mammalian brainstem contains two coupled neuronal oscillators: one for inspiration and the other for active expiration. However, whether additional burst generating ability is required for generating other phases of ventilation in mammals is controversial. To investigate brainstem circuit architectures capable of producing multiphasic ventilatory rhythms, we utilized the isolated frog brainstem. This preparation produces two types of ventilatory motor patterns, buccal and lung bursts. Lung bursts can be divided into two phases, priming and powerstroke. Previously we identified two putative oscillators, the Buccal and Lung Areas. The Lung Area produces the lung powerstroke and the Buccal Area produces buccal bursts and - we assumed - the priming phase of lung bursts. However, here we identify an additional brainstem region that generates the priming phase. This Priming Area extends rostral and caudal of the Lung Area and is distinct from the Buccal Area. Using AMPA microinjections and reversible synaptic blockade, we demonstrate selective excitation and ablation (respectively) of priming phase activity. We also demonstrate that the Priming Area contains neurons active selectively during the priming phase. Thus, we propose that three distinct neuronal components generate the multiphase respiratory motor pattern produced by the frog brainstem: the buccal, priming and powerstroke burst generators. This raises the possibility that a similar multi-burst generator architecture mediates the three distinct phases of ventilation in mammals.
© 2015 The Authors. The Journal of Physiology © 2015 The Physiological Society.

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Year:  2015        PMID: 25952282      PMCID: PMC4506190          DOI: 10.1113/JP270380

Source DB:  PubMed          Journal:  J Physiol        ISSN: 0022-3751            Impact factor:   5.182


  54 in total

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Authors:  W M St John; T A Bledsoe
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8.  Neurorespiratory pattern of gill and lung ventilation in the decerebrate spontaneously breathing tadpole.

Authors:  M J Gdovin; C S Torgerson; J E Remmers
Journal:  Respir Physiol       Date:  1998-08

9.  Spatial and functional architecture of the mammalian brain stem respiratory network: a hierarchy of three oscillatory mechanisms.

Authors:  J C Smith; A P L Abdala; H Koizumi; I A Rybak; J F R Paton
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Authors:  N Kogo; S F Perry; J E Remmers
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  8 in total

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Journal:  J Physiol       Date:  2016-09-15       Impact factor: 5.182

5.  The rostral medulla of bullfrog tadpoles contains critical lung rhythmogenic and chemosensitive regions across metamorphosis.

Authors:  Mitchell D Reed; Kimberly E Iceman; Michael B Harris; Barbara E Taylor
Journal:  Comp Biochem Physiol A Mol Integr Physiol       Date:  2018-06-08       Impact factor: 2.320

Review 6.  Development of central respiratory control in anurans: The role of neurochemicals in the emergence of air-breathing and the hypoxic response.

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7.  Synaptic up-scaling preserves motor circuit output after chronic, natural inactivity.

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Review 8.  Respiratory rhythm generation: triple oscillator hypothesis.

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  8 in total

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