Dynamic activation of KATP channels in rhythmically active neurons
Open Access
- 1 November 2001
- journal article
- Published by Wiley in The Journal of Physiology
- Vol. 537 (1) , 69-81
- https://doi.org/10.1111/j.1469-7793.2001.0069k.x
Abstract
1 The respiratory centre within the brainstem is one of the most active neuronal networks that generates ongoing rhythmic activity. Stabilization of such vital activity requires efficient processes for activity‐correlated adjustment of neuronal excitability. Recent investigations have shown that a regulatory factor coupling electrical activity with cell metabolism comprises ATP‐dependent K+ channels (KATP channels), which continuously adjust the excitability of respiratory neurons during normoxia and increasingly during hypoxia. 2 We used the single‐cell antisense RNA amplification‐polymerase chain reaction (PCR) technique to demonstrate that respiratory neurons co‐express the sulphonylurea receptor SUR1 with the Kir6.2 potassium channel protein. 3 Single channel measurements on rhythmically active inspiratory neurons of the brainstem slice preparation of newborn mice revealed that KATP channels are periodically activated in synchrony with each respiratory cycle. 4 The Na+‐K+‐ATPase was inhibited with ouabain to demonstrate that oscillations of the channel open probability disappear, although respiratory activity persists for a longer time. Such findings indicate that KATP channel open probability reflects activity‐dependent fluctuations in the ATP concentration within submembrane domains. 5 We also examined the effects of extracellular [K+] and hypoxia. All changes in the respiratory rhythm (i.e. changes in cycle length and burst durations) affected the periodic fluctuations of KATP channel activity. 6 The data indicate that KATP channels continuously modulate central respiratory neurons and contribute to periodic adjustment of neuronal excitability. Such dynamic adjustment of channel activity operates over a high range of metabolic demands, starting below physiological conditions and extending into pathological situations of energy depletion.Keywords
This publication has 43 references indexed in Scilit:
- Inhibition of Na+-K+Pump Alleviates the Shortening of Action Potential Duration caused by Metabolic Inhibition via Blockade of KATPChannels in Coronary Perfused Ventricular Muscles of Guinea-pigsJournal of Molecular and Cellular Cardiology, 1999
- A re‐examination of adult mouse nicotinic acetylcholine receptor channel activation kineticsThe Journal of Physiology, 1999
- Hypoxia activates ATP‐dependent potassium channels in inspiratory neurones of neonatal miceThe Journal of Physiology, 1998
- KATP channel formation by the sulphonylurea receptors SUR1 with Kir6.2 subunits in rat dorsal vagal neurons in situThe Journal of Physiology, 1998
- CYTOPLASMIC ATP-DEPENDENT REGULATION OF ION TRANSPORTERS AND CHANNELS: Mechanisms and MessengersAnnual Review of Physiology, 1997
- Pathophysiological Functions of ATP-sensitive K+ Channels in Myocardial Ischemia.Japanese Heart Journal, 1997
- Cloning and functional expression of the cDNA encoding a novel ATP‐sensitive potassium channel subunit expressed in pancreatic β‐cells, brain, heart and skeletal muscleFEBS Letters, 1995
- Reconstitution of I KATP : An Inward Rectifier Subunit Plus the Sulfonylurea ReceptorScience, 1995
- Modulation of Ion Gradients and Glutamate Release in Cultured Cerebellar Granule Cells by OuabainJournal of Neurochemistry, 1995
- Oscillations of Membrane Current and Excitability Driven by Metabolic Oscillations in Heart CellsScience, 1994