Disfacilitation and active inhibition in the neocortex during the natural sleep-wake cycle: An intracellular study
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Open Access
- 6 February 2001
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 98 (4) , 1924-1929
- https://doi.org/10.1073/pnas.041430398
Abstract
Earlier extracellular recordings during natural sleep have shown that, during slow-wave sleep (SWS), neocortical neurons display long-lasting periods of silence, whereas they are tonically active and discharge at higher rates during waking and sleep with rapid eye movements (REMs). We analyzed the nature of long-lasting periods of neuronal silence in SWS and the changes in firing rates related to ocular movements during REM sleep and waking using intracellular recordings from electrophysiologically identified neocortical neurons in nonanesthetized and nonparalyzed cats. We found that the silent periods during SWS are associated with neuronal hyperpolarizations, which are due to a mixture of K+ currents and disfacilitation processes. Conventional fast-spiking neurons (presumably local inhibitory interneurons) increased their firing rates during REMs and eye movements in waking. During REMs, the firing rates of regular-spiking neurons from associative areas decreased and intracellular traces revealed numerous, short-lasting, low-amplitude inhibitory postsynaptic potentials (IPSPs), that were reversed after intracellular chloride infusion. In awake cats, regular-spiking neurons could either increase or decrease their firing rates during eye movements. The short-lasting IPSPs associated with eye movements were still present in waking; they preceded the spikes and affected their timing. We propose that there are two different forms of firing rate control: disfacilitation induces long-lasting periods of silence that occur spontaneously during SWS, whereas active inhibition, consisting of low-amplitude, short-lasting IPSPs, is prevalent during REMs and precisely controls the timing of action potentials in waking.Keywords
This publication has 47 references indexed in Scilit:
- NEURAL SELECTION AND CONTROL OF VISUALLY GUIDED EYE MOVEMENTSAnnual Review of Neuroscience, 1999
- Cholinergic Switching Within Neocortical Inhibitory NetworksScience, 1998
- Salient features of synaptic organisation in the cerebral cortex1Published on the World Wide Web on 3 March 1998.1Brain Research Reviews, 1998
- Chattering Cells: Superficial Pyramidal Neurons Contributing to the Generation of Synchronous Oscillations in the Visual CortexScience, 1996
- Persistent Sodium Current in Mammalian Central NeuronsAnnual Review of Physiology, 1996
- Excitatory synaptic inputs to spiny stellate cells in cat visual cortexNature, 1996
- The pyramidal neuron of the cerebral cortex: Morphological and chemical characteristics of the synaptic inputsProgress in Neurobiology, 1992
- Intrinsic firing patterns of diverse neocortical neuronsTrends in Neurosciences, 1990
- The Intrinsic Electrophysiological Properties of Mammalian Neurons: Insights into Central Nervous System FunctionScience, 1988
- Inhibitory potentials in neurons of the deep layers of the in vitro neocortical sliceBrain Research, 1986