Literature DB >> 20219997

Glycinergic pacemaker neurons in preBötzinger complex of neonatal mouse.

Consuelo Morgado-Valle1, Serapio M Baca, Jack L Feldman.   

Abstract

The preBötzinger complex (preBötC) is essential for normal respiratory rhythm generation in rodents, for which the underlying mechanisms remain unknown. Excitatory preBötC pacemaker neurons are proposed to be necessary for rhythm generation. Here we report the presence of a population of preBötC glycinergic pacemaker neurons. We used rhythmic in vitro transverse slice preparations from transgenic mice where neurons expressing the glycine transporter 2 (GlyT2) gene coexpress enhanced green fluorescent protein (EGFP). We combined epifluorescence and whole-cell patch-clamp recording to study preBötC EGFP-labeled, i.e., glycinergic, inspiratory-modulated neurons with pacemaker properties. We defined glycinergic pacemaker neurons as those preBötC EGFP neurons that exhibited the following: (1) ectopic bursting in rhythmic slices when depolarized during their normally silent period and (2) bursting when depolarized in nonrhythmic slices (following AMPA receptor blockade). Forty-two percent of EGFP-labeled neurons were inspiratory (n = 48 of 115), of which 23% (n = 11 of 48 inspiratory; 10% of the total recorded) were pacemakers. We conclude that there is a population of preBötC inspiratory-modulated glycinergic, presumably inhibitory, pacemaker neurons that constitute a substantial fraction of all preBötC pacemaker neurons. These findings challenge contemporary models for respiratory rhythmogenesis that assume the excitatory nature of preBötC pacemaker neurons. Testable and nontrivial predictions of the functional role of excitatory and inhibitory pacemaker neurons need to be proposed and the necessary experiments performed.

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Year:  2010        PMID: 20219997      PMCID: PMC2947441          DOI: 10.1523/JNEUROSCI.3040-09.2010

Source DB:  PubMed          Journal:  J Neurosci        ISSN: 0270-6474            Impact factor:   6.167


  44 in total

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2.  Models of respiratory rhythm generation in the pre-Bötzinger complex. III. Experimental tests of model predictions.

Authors:  C A Del Negro; S M Johnson; R J Butera; J C Smith
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3.  Identification of two types of inspiratory pacemaker neurons in the isolated respiratory neural network of mice.

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Journal:  J Neurophysiol       Date:  2001-07       Impact factor: 2.714

4.  Respiratory rhythm: an emergent network property?

Authors:  Christopher A Del Negro; Consuelo Morgado-Valle; Jack L Feldman
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5.  Normal breathing requires preBötzinger complex neurokinin-1 receptor-expressing neurons.

Authors:  P A Gray; W A Janczewski; N Mellen; D R McCrimmon; J L Feldman
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6.  Modulation of respiratory frequency by peptidergic input to rhythmogenic neurons in the preBötzinger complex.

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7.  Reorganisation of respiratory network activity after loss of glycinergic inhibition.

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8.  Neurokinin-1 receptor-immunoreactive neurons of the ventral respiratory group in the rat.

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9.  Neurokinin-1 receptor-expressing cells of the ventral respiratory group are functionally heterogeneous and predominantly glutamatergic.

Authors:  Patrice G Guyenet; Charles P Sevigny; Matthew C Weston; Ruth L Stornetta
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10.  Location and properties of respiratory neurones with putative intrinsic bursting properties in the rat in situ.

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  50 in total

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2.  Preinspiratory calcium rise in putative pre-Botzinger complex astrocytes.

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3.  Late-expiratory activity: emergence and interactions with the respiratory CpG.

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Review 4.  Respiratory rhythm generation in vivo.

Authors:  Diethelm W Richter; Jeffrey C Smith
Journal:  Physiology (Bethesda)       Date:  2014-01

5.  Developmental origin of preBötzinger complex respiratory neurons.

Authors:  Paul A Gray; John A Hayes; Guang Y Ling; Isabel Llona; Srinivasan Tupal; Maria Cristina D Picardo; Sarah E Ross; Tsutomu Hirata; Joshua G Corbin; Jaime Eugenín; Christopher A Del Negro
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6.  Optogenetic excitation of preBötzinger complex neurons potently drives inspiratory activity in vivo.

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Review 7.  Facing the challenge of mammalian neural microcircuits: taking a few breaths may help.

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Journal:  J Physiol       Date:  2015-01-01       Impact factor: 5.182

Review 8.  Brainstem respiratory networks: building blocks and microcircuits.

Authors:  Jeffrey C Smith; Ana P L Abdala; Anke Borgmann; Ilya A Rybak; Julian F R Paton
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9.  Physiological and morphological properties of Dbx1-derived respiratory neurons in the pre-Botzinger complex of neonatal mice.

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Review 10.  Breathing matters.

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