ATP-sensitive potassium channels alter glycolytic flux to modulate cortical activity and sleep
Abstract
Metabolism plays a key role in the maintenance of sleep/wake states. Brain lactate fluctuations are a biomarker of sleep/wake transitions, where increased interstitial fluid (ISF) lactate levels are associated with wakefulness and decreased ISF lactate is required for sleep. ATP-sensitive potassium (K ATP ) channels couple glucose-lactate metabolism with excitability. Using mice lacking K ATP channel activity (e.g., Kir6.2 −/− mice), we explored how changes in glucose utilization affect cortical electroencephalography (EEG) activity and sleep/wake homeostasis. In the brain, Kir6.2 −/− mice shunt glucose toward glycolysis, reducing neurotransmitter biosynthesis and dampening cortical EEG activity. Kir6.2 −/− mice spent more time awake at the onset of the light period due to altered ISF lactate dynamics. Together, we show that Kir6.2-K ATP channels act as metabolic sensors to gate arousal by maintaining the metabolic stability of sleep/wake states and providing the metabolic flexibility to transition between states.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (14)
Nicholas J. Constantino
Department of Physiology, University of Kentucky
Caitlin M. Carroll
Department of Psychiatry, Wake Forest School of Medicine
Holden C. Williams
Department of Physiology, University of Kentucky
Hemendra J. Vekaria
Department of Neuroscience, University of Kentucky
Carla M. Yuede
Department of Psychiatry, Washington University School of Medicine
Kai Saito
Department of Neuroscience, University of Kentucky
Patrick W. Sheehan
Department of Neurology, Washington University School of Medicine
J. Andy Snipes
Department of Physiology, University of Kentucky
Marcus E. Raichle
Erik S. Musiek
Department of Neurology, Washington University School of Medicine
Patrick G. Sullivan
Department of Neuroscience, University of Kentucky
Josh M. Morganti
Department of Neuroscience, University of Kentucky
Lance A. Johnson
Department of Physiology, University of Kentucky
Shannon L. Macauley
Department of Physiology, University of Kentucky