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Retrotrapezoid Nucleus and Parafacial Respiratory Group

Overview
Specialty Pulmonary Medicine
Date 2010 Mar 2
PMID 20188865
Citations 54
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Abstract

The rat retrotrapezoid nucleus (RTN) contains about 2000 Phox2b-expressing glutamatergic neurons (ccRTN neurons; 800 in mice) with a well-understood developmental lineage. ccRTN neuron development fails in mice carrying a Phox2b mutation commonly present in the congenital central hypoventilation syndrome. In adulthood, ccRTN neurons regulate the breathing rate and intensity, and may regulate active expiration along with other neighboring respiratory neurons. Prenatally, ccRTN neurons form an autonomous oscillator (embryonic parafacial group, e-pF) that activates and possibly paces inspiration. The pacemaker properties of the ccRTN neurons probably vanish after birth to be replaced by synaptic drives. The neonatal parafacial respiratory group (pfRG) may represent a transitional phase during which ccRTN neurons lose their group pacemaker properties. ccRTN neurons are activated by acidification via an intrinsic mechanism or via ATP released by glia. In summary, throughout life, ccRTN neurons seem to be a critical hub for the regulation of CO(2) via breathing.

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References
1.
Fukuda Y, Honda Y, Schlafke M, Loeschcke H . Effect of H+ on the membrane potential of silent cells in the ventral and dorsal surface layers of the rat medulla in vitro. Pflugers Arch. 1978; 376(3):229-35. DOI: 10.1007/BF00584955. View

2.
Onimaru H, Arata A, Homma I . Inhibitory synaptic inputs to the respiratory rhythm generator in the medulla isolated from newborn rats. Pflugers Arch. 1990; 417(4):425-32. DOI: 10.1007/BF00370663. View

3.
Connelly C, Ellenberger H, Feldman J . Are there serotonergic projections from raphe and retrotrapezoid nuclei to the ventral respiratory group in the rat?. Neurosci Lett. 1989; 105(1-2):34-40. DOI: 10.1016/0304-3940(89)90007-4. View

4.
Histed M, Bonin V, Reid R . Direct activation of sparse, distributed populations of cortical neurons by electrical microstimulation. Neuron. 2009; 63(4):508-22. PMC: 2874753. DOI: 10.1016/j.neuron.2009.07.016. View

5.
Kuwaki T . Orexinergic modulation of breathing across vigilance states. Respir Physiol Neurobiol. 2008; 164(1-2):204-12. DOI: 10.1016/j.resp.2008.03.011. View