ATP-sensitive potassium channels alter glycolytic flux to modulate cortical activity and sleep

N Nicholas J. Constantino (Department of Physiology, University of Kentucky) C Caitlin M. Carroll (Department of Psychiatry, Wake Forest School of Medicine) H Holden C. Williams (Department of Physiology, University of Kentucky) H Hemendra J. Vekaria (Department of Neuroscience, University of Kentucky) C Carla M. Yuede (Department of Psychiatry, Washington University School of Medicine) K Kai Saito (Department of Neuroscience, University of Kentucky) P Patrick W. Sheehan (Department of Neurology, Washington University School of Medicine) J J. Andy Snipes (Department of Physiology, University of Kentucky) M Marcus E. Raichle E Erik S. Musiek (Department of Neurology, Washington University School of Medicine) P Patrick G. Sullivan (Department of Neuroscience, University of Kentucky) J Josh M. Morganti (Department of Neuroscience, University of Kentucky) L Lance A. Johnson (Department of Physiology, University of Kentucky) S Shannon L. Macauley (Department of Physiology, University of Kentucky)

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

Volume / Issue Vol. 122, Issue 8
Published February 25, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (14)

N

Nicholas J. Constantino

Department of Physiology, University of Kentucky

C

Caitlin M. Carroll

Department of Psychiatry, Wake Forest School of Medicine

H

Holden C. Williams

Department of Physiology, University of Kentucky

H

Hemendra J. Vekaria

Department of Neuroscience, University of Kentucky

C

Carla M. Yuede

Department of Psychiatry, Washington University School of Medicine

K

Kai Saito

Department of Neuroscience, University of Kentucky

P

Patrick W. Sheehan

Department of Neurology, Washington University School of Medicine

J

J. Andy Snipes

Department of Physiology, University of Kentucky

M

Marcus E. Raichle

E

Erik S. Musiek

Department of Neurology, Washington University School of Medicine

P

Patrick G. Sullivan

Department of Neuroscience, University of Kentucky

J

Josh M. Morganti

Department of Neuroscience, University of Kentucky

L

Lance A. Johnson

Department of Physiology, University of Kentucky

S

Shannon L. Macauley

Department of Physiology, University of Kentucky