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Publication : Central respiratory rhythmogenesis is abnormal in lbx1- deficient mice.

First Author  Pagliardini S Year  2008
Journal  J Neurosci Volume  28
Issue  43 Pages  11030-41
PubMed ID  18945911 Mgi Jnum  J:143793
Mgi Id  MGI:3829098 Doi  10.1523/JNEUROSCI.1648-08.2008
Citation  Pagliardini S, et al. (2008) Central respiratory rhythmogenesis is abnormal in lbx1- deficient mice. J Neurosci 28(43):11030-41
abstractText  Lbx1 is a transcription factor that determines neuronal cell fate and identity in the developing medulla and spinal cord. Newborn Lbx1 mutant mice die of respiratory distress during the early postnatal period. Using in vitro brainstem-spinal cord preparations we tested the hypothesis that Lbx1 is necessary for the inception, development and modulation of central respiratory rhythmogenesis. The inception of respiratory rhythmogenesis at embryonic day 15 (E15) was not perturbed in Lbx1 mutant mice. However, the typical age-dependent increase in respiratory frequency observed in wild-type from E15 to P0 was not observed in Lbx1 mutant mice. The slow respiratory rhythms in E18.5 Lbx1 mutant preparations were increased to wild-type frequencies by application of substance P, thyrotropin releasing hormone, serotonin, noradrenaline, or the ampakine drug 1-(1,4-benzodioxan-6-yl-carbonyl) piperidine. Those data suggest that respiratory rhythm generation within the pre-Botzinger complex (preBotC) is presumably functional in Lbx1 mutant mice with additional neurochemical drive. This was supported by anatomical data showing that the gross structure of the preBotC was normal, although there were major defects in neuronal populations that provide important modulatory drive to the preBotC including the retrotrapezoid nucleus, catecholaminergic brainstem nuclei, nucleus of the solitary tract, and populations of inhibitory neurons in the ventrolateral and dorsomedial medullary nuclei. Finally, we determined that those defects were caused by abnormalities of neuronal specification early in development or subsequent neuronal migration.
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