inspiratory neurons
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2021 ◽  
Vol 12 ◽  
Author(s):  
Ann L. Revill ◽  
Alexis Katzell ◽  
Christopher A. Del Negro ◽  
William K. Milsom ◽  
Gregory D. Funk

The pre-Bötzinger complex (preBötC) of the ventral medulla generates the mammalian inspiratory breathing rhythm. When isolated in explants and deprived of synaptic inhibition, the preBötC continues to generate inspiratory-related rhythm. Mechanisms underlying burst generation have been investigated for decades, but cellular and synaptic mechanisms responsible for burst termination have received less attention. KCNQ-mediated K+ currents contribute to burst termination in other systems, and their transcripts are expressed in preBötC neurons. Therefore, we tested the hypothesis that KCNQ channels also contribute to burst termination in the preBötC. We recorded KCNQ-like currents in preBötC inspiratory neurons in neonatal rat slices that retain respiratory rhythmicity. Blocking KCNQ channels with XE991 or linopirdine (applied via superfusion or locally) increased inspiratory burst duration by 2- to 3-fold. By contrast, activation of KCNQ with retigabine decreased inspiratory burst duration by ~35%. These data from reduced preparations suggest that the KCNQ current in preBötC neurons contributes to inspiratory burst termination.


Neuroscience ◽  
2019 ◽  
Vol 406 ◽  
pp. 467-486
Author(s):  
George M.P.R. Souza ◽  
William H. Barnett ◽  
Mateus R. Amorim ◽  
Ludmila Lima-Silveira ◽  
Davi J.A. Moraes ◽  
...  

2015 ◽  
Vol 29 (S1) ◽  
Author(s):  
Teresa Pitts ◽  
Tabitha Shen ◽  
Silvia Varechova ◽  
Bruno Demoulin ◽  
Zhou Guannan ◽  
...  

2012 ◽  
Vol 107 (2) ◽  
pp. 603-617 ◽  
Author(s):  
Mackenzie M. Ott ◽  
Sarah C. Nuding ◽  
Lauren S. Segers ◽  
Russell O'Connor ◽  
Kendall F. Morris ◽  
...  

Ventrolateral respiratory column (VRC) circuits that modulate breathing in response to changes in central chemoreceptor drive are incompletely understood. We employed multielectrode arrays and spike train correlation methods to test predictions of the hypothesis that pre-Bötzinger complex (pre-BötC) and retrotrapezoid nucleus/parafacial (RTN-pF) circuits cooperate in chemoreceptor-evoked tuning of ventral respiratory group (VRG) inspiratory neurons. Central chemoreceptors were selectively stimulated by injections of CO2-saturated saline into the vertebral artery in seven decerebrate, vagotomized, neuromuscularly blocked, and artificially ventilated cats. Among sampled neurons in the Bötzinger complex (BötC)-to-VRG region, 70% (161 of 231) had a significant change in firing rate after chemoreceptor stimulation, as did 70% (101 of 144) of the RTN-pF neurons. Other responsive neurons (24 BötC-VRG; 11 RTN-pF) had a change in the depth of respiratory modulation without a significant change in average firing rate. Seventy BötC-VRG chemoresponsive neurons triggered 189 offset-feature correlograms (96 peaks; 93 troughs) with at least one responsive BötC-VRG cell. Functional input from at least one RTN-pF cell could be inferred for 45 BötC-VRG neurons (19%). Eleven RTN-pF cells were correlated with more than one BötC-VRG target neuron, providing evidence for divergent connectivity. Thirty-seven RTN-pF neurons, 24 of which were chemoresponsive, were correlated with at least one chemoresponsive BötC-VRG neuron. Correlation linkage maps and spike-triggered averages of phrenic nerve signals suggest transmission of chemoreceptor drive via a multipath network architecture: RTN-pF modulation of pre-BötC-VRG rostral-to-caudal excitatory inspiratory neuron chains is tuned by feedforward and recurrent inhibition from other inspiratory neurons and from “tonic” expiratory neurons.


2012 ◽  
Vol 3 ◽  
Author(s):  
L. S. Segers ◽  
S. C. Nuding ◽  
A. Vovk ◽  
T. Pitts ◽  
D. M. Baekey ◽  
...  
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