RRC ID 34872
Author Flourakis M, Kula-Eversole E, Hutchison AL, Han TH, Aranda K, Moose DL, White KP, Dinner AR, Lear BC, Ren D, Diekman CO, Raman IM, Allada R.
Title A Conserved Bicycle Model for Circadian Clock Control of Membrane Excitability.
Journal Cell
Abstract Circadian clocks regulate membrane excitability in master pacemaker neurons to control daily rhythms of sleep and wake. Here, we find that two distinctly timed electrical drives collaborate to impose rhythmicity on Drosophila clock neurons. In the morning, a voltage-independent sodium conductance via the NA/NALCN ion channel depolarizes these neurons. This current is driven by the rhythmic expression of NCA localization factor-1, linking the molecular clock to ion channel function. In the evening, basal potassium currents peak to silence clock neurons. Remarkably, daily antiphase cycles of sodium and potassium currents also drive mouse clock neuron rhythms. Thus, we reveal an evolutionarily ancient strategy for the neural mechanisms that govern daily sleep and wake.
Volume 162(4)
Pages 836-48
Published 2015-8-13
DOI 10.1016/j.cell.2015.07.036
PII S0092-8674(15)00913-7
PMID 26276633
PMC PMC4537776
MeSH Animals Biological Clocks Cell Membrane / metabolism Circadian Clocks* Circadian Rhythm* Drosophila / cytology Drosophila / physiology* Drosophila Proteins / metabolism Gene Knockdown Techniques Ion Channels / genetics Ion Channels / metabolism Membrane Proteins Mice Nerve Tissue Proteins / genetics Nerve Tissue Proteins / metabolism Neurons / metabolism Patch-Clamp Techniques Potassium / metabolism Sodium / metabolism
IF 38.637
Times Cited 79
WOS Category BIOCHEMISTRY & MOLECULAR BIOLOGY CELL BIOLOGY
Resource
Drosophila