Literature DB >> 18599543

Pontine respiratory-modulated activity before and after vagotomy in decerebrate cats.

Thomas E Dick1, Roger Shannon, Bruce G Lindsey, Sarah C Nuding, Lauren S Segers, David M Baekey, Kendall F Morris.   

Abstract

The dorsolateral (DL) pons modulates the respiratory pattern. With the prevention of lung inflation during central inspiratory phase (no-inflation (no-I or delayed-I) tests), DL pontine neuronal activity increased the strength and consistency of its respiratory modulation, properties measured statistically by the eta(2) value. This increase could result from enhanced respiratory-modulated drive arising from the medulla normally gated by vagal activity. We hypothesized that DL pontine activity during delayed-I tests would be comparable to that following vagotomy. Ensemble recordings of neuronal activity were obtained before and after vagotomy and during delayed-I tests in decerebrate, paralysed and ventilated cats. In general, changes in activity pattern during the delayed-I tests were similar to those after vagotomy, with the exception of firing-rate differences at the inspiratory-expiratory phase transition. Even activity that was respiratory-modulated with the vagi intact became more modulated while withholding lung inflation and following vagotomy. Furthermore, we recorded activity that was excited by lung inflation as well as changes that persisted past the stimulus cycle. Computer simulations of a recurrent inhibitory neural network model account not only for enhanced respiratory modulation with vagotomy but also the varied activities observed with the vagi intact. We conclude that (a) DL pontine neurones receive both vagal-dependent excitatory inputs and central respiratory drive; (b) even though changes in pontine activity are transient, they can persist after no-I tests whether or not changes in the respiratory pattern occur in the subsequent cycles; and (c) models of respiratory control should depict a recurrent inhibitory circuitry, which can act to maintain the stability and provide plasticity to the respiratory pattern.

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Year:  2008        PMID: 18599543      PMCID: PMC2652175          DOI: 10.1113/jphysiol.2008.152108

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


  51 in total

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Authors:  B G Lindsey; Y M Hernandez; K F Morris; R Shannon; G L Gerstein
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3.  Powerful inhibition of pontine respiratory neurons by pulmonary afferent activity.

Authors:  J L Feldman; M I Cohen; P Wolotsky
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Review 4.  Neurogenesis of patterns of automatic ventilatory activity.

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5.  Inspiratory drive and phase duration during carotid chemoreceptor stimulation in the cat: medullary neurone correlations.

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Journal:  J Physiol       Date:  1996-02-15       Impact factor: 5.182

6.  Activities of pulmonary stretch receptors during ventilatory cycles without lung inflation.

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9.  Activity of respiratory neurons during NREM sleep.

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  27 in total

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2.  Respiratory and Mayer wave-related discharge patterns of raphé and pontine neurons change with vagotomy.

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3.  Reconfiguration of the pontomedullary respiratory network: a computational modeling study with coordinated in vivo experiments.

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4.  Pontine-ventral respiratory column interactions through raphe circuits detected using multi-array spike train recordings.

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Review 5.  Pontine mechanisms of respiratory control.

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Review 6.  Pontine respiratory activity involved in inspiratory/expiratory phase transition.

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7.  Learning to breathe: control of the inspiratory-expiratory phase transition shifts from sensory- to central-dominated during postnatal development in rats.

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8.  Ventrolateral medullary functional connectivity and the respiratory and central chemoreceptor-evoked modulation of retrotrapezoid-parafacial neurons.

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9.  Vagal-dependent nonlinear variability in the respiratory pattern of anesthetized, spontaneously breathing rats.

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