Literature DB >> 30109823

Defining the Rhythmogenic Elements of Mammalian Breathing.

Jan-Marino Ramirez1, Nathan Baertsch1.   

Abstract

Breathing's remarkable ability to adapt to changes in metabolic, environmental, and behavioral demands stems from a complex integration of its rhythm-generating network within the wider nervous system. Yet, this integration complicates identification of its specific rhythmogenic elements. Based on principles learned from smaller rhythmic networks of invertebrates, we define criteria that identify rhythmogenic elements of the mammalian breathing network and discuss how they interact to produce robust, dynamic breathing.

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Year:  2018        PMID: 30109823      PMCID: PMC6230551          DOI: 10.1152/physiol.00025.2018

Source DB:  PubMed          Journal:  Physiology (Bethesda)        ISSN: 1548-9221


  165 in total

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5.  A mechanism for production of phase shifts in a pattern generator.

Authors:  J S Eisen; E Marder
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6.  Hierarchy of orofacial rhythms revealed through whisking and breathing.

Authors:  Jeffrey D Moore; Martin Deschênes; Takahiro Furuta; Daniel Huber; Matthew C Smear; Maxime Demers; David Kleinfeld
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7.  Mechanisms underlying pattern generation in lobster stomatogastric ganglion as determined by selective inactivation of identified neurons. III. Synaptic connections of electrically coupled pyloric neurons.

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8.  Central neural circuits for coordination of swallowing, breathing, and coughing: predictions from computational modeling and simulation.

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9.  Spike-Timing of Orbitofrontal Neurons Is Synchronized With Breathing.

Authors:  Áron Kőszeghy; Bálint Lasztóczi; Thomas Forro; Thomas Klausberger
Journal:  Front Cell Neurosci       Date:  2018-04-20       Impact factor: 5.505

10.  The interdependence of excitation and inhibition for the control of dynamic breathing rhythms.

Authors:  Nathan Andrew Baertsch; Hans Christopher Baertsch; Jan Marino Ramirez
Journal:  Nat Commun       Date:  2018-02-26       Impact factor: 14.919

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  25 in total

1.  Multi-Level Regulation of Opioid-Induced Respiratory Depression.

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2.  Competing mechanisms of plasticity impair compensatory responses to repetitive apnoea.

Authors:  Daryl P Fields; Kendra M Braegelmann; Armand L Meza; Carly R Mickelson; Maia G Gumnit; Tracy L Baker
Journal:  J Physiol       Date:  2019-07-07       Impact factor: 5.182

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4.  The effect of seizure spread to the amygdala on respiration and onset of ictal central apnea.

Authors:  William P Nobis; Karina A González Otárula; Jessica W Templer; Elizabeth E Gerard; Stephen VanHaerents; Gregory Lane; Guangyu Zhou; Joshua M Rosenow; Christina Zelano; Stephan Schuele
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5.  Dual mechanisms of opioid-induced respiratory depression in the inspiratory rhythm-generating network.

Authors:  Nathan A Baertsch; Nicholas E Bush; Nicholas J Burgraff; Jan-Marino Ramirez
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6.  Inspiratory rhythm generation is stabilized by Ih.

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7.  Differential impact of two critical respiratory centres in opioid-induced respiratory depression in awake mice.

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Review 8.  Neuronal mechanisms underlying opioid-induced respiratory depression: our current understanding.

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Review 9.  Toxicities of opioid analgesics: respiratory depression, histamine release, hemodynamic changes, hypersensitivity, serotonin toxicity.

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Review 10.  TECPR2 mutation-associated respiratory dysregulation: more than central apnea.

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