Literature DB >> 9723132

Neurogenesis of patterns of automatic ventilatory activity.

W M St-John1.   

Abstract

Normal respiration, termed eupnea, is characterized by periodic filling and emptying of the lungs. Eupnea can occur 'automatically' without conscious effort. Such automatic ventilation is controlled by the brainstem respiratory centers of pons and medulla. Following removal of the pons, eupnea is replaced by gasping, marked by brief but maximal inspiratory efforts. The mechanisms by which the respiratory rhythms are generated have been examined intensively. Evidence is discussed that ventilatory activity can be generated in multiple regions of pons and medulla. Eupnea and gasping represent fundamentally different ventilatory patterns. Only for gasping has a critical region for neurogenesis been identified, in the rostral medulla. Gasping may be generated by the discharge of 'pacemaker' neurons. In eupnea, this pacemaker activity is suppressed and incorporated into the pontile and medullary neuronal circuit responsible for the neurogenesis of eupnea. Evidence for ventilatory neurogenesis which has been obtained from a number of in vitro preparations is discussed. A much-used preparation is that of a 'superfused' brainstem of the neonatal rat. However, activities of this preparation differ greatly from those of eupnea, as recorded in vitro or in arterially perfused in vitro preparations. Activities of this 'superfused' preparation are identical with gasping and, hence, results must be reinterpreted accordingly. The possibility is present that mechanisms responsible for generating respiratory rhythms may differ from those responsible for shaping respiratory-modulated discharge patterns of cranial and spinal nerves. The importance of pontile mechanisms in the neurogenesis and control of eupnea is reemphasized.

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Year:  1998        PMID: 9723132     DOI: 10.1016/s0301-0082(98)00031-8

Source DB:  PubMed          Journal:  Prog Neurobiol        ISSN: 0301-0082            Impact factor:   11.685


  44 in total

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

Authors:  I A Rybak; R O'Connor; A Ross; N A Shevtsova; S C Nuding; L S Segers; R Shannon; T E Dick; W L Dunin-Barkowski; J M Orem; I C Solomon; K F Morris; B G Lindsey
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9.  Glycinergic inhibition is essential for co-ordinating cranial and spinal respiratory motor outputs in the neonatal rat.

Authors:  M Dutschmann; J F R Paton
Journal:  J Physiol       Date:  2002-09-01       Impact factor: 5.182

10.  Respiratory recovery following organophosphate poisoning in a rat model is suppressed by isolated hypoxia at the point of apnea.

Authors:  Romolo J Gaspari; David Paydarfar
Journal:  Toxicology       Date:  2012-08-18       Impact factor: 4.221

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