STUDY OBJECTIVES: The mechanisms responsible for the homeostatic decrease of slow-wave activity (SWA, defined in this study as electroencephalogram [EEG] power between 0.5 and 4.0 Hz) during sleep are unknown. In agreement with a recent hypothesis, in the first of 3 companion papers, large-scale computer simulations of the sleeping thalamocortical system showed that a decrease in cortical synaptic strength is sufficient to account for the decline in SWA. In the model, the reduction in SWA was accompanied by decreased incidence of high-amplitude slow waves, decreased wave slopes, and increased number of waves with multiple peaks. In a second companion paper in the rat, local field potential recordings during early and late sleep confirmed th...
Brain electrical activity is largely composed of oscillations at characteristic frequencies. These r...
Slow wave activity (SWA, 0.5-4 Hz) represents the predominant EEG oscillatory activity during slow w...
Intracellular studies reveal that, during slow wave sleep (SWS), the entire cortical network can swi...
STUDY OBJECTIVES: The mechanisms responsible for the homeostatic decrease of slow-wave activity (SWA...
Study Objectives: The mechanisms responsible for the homeostatic decrease of slow-wave activity (SWA...
STUDY OBJECTIVE: Sleep slow-wave activity (SWA, EEG power between 0.5 and 4.0 Hz) decreases homeosta...
Slow oscillations (< 1 Hz) in the non-rapid eye movement (NREM) sleep electroencephalogram (EEG) res...
The electrical activity of the brain does not only reflect the current level of arousal, ongoing beh...
EEG slow waves, the hallmarks of NREM sleep are thought to be crucial for the regulation of several ...
EEG slow waves, the hallmarks of NREM sleep are thought to be crucial for the regulation of several ...
<p>Previous work showed that two types of slow waves are temporally dissociated during the transitio...
Sleep is a behavior commonly observed in a large number of animal species. However, neuroscientists ...
The regulation of the timing of sleep is thought to be linked to the temporal dynamics of slow-wave ...
Slow waves (SWs, 0.5–4 Hz) in field potentials during sleep reflect synchronized alternations betwee...
Sleep slow waves are the major electrophysiological features of non-rapid eye movement (NREM) sleep....
Brain electrical activity is largely composed of oscillations at characteristic frequencies. These r...
Slow wave activity (SWA, 0.5-4 Hz) represents the predominant EEG oscillatory activity during slow w...
Intracellular studies reveal that, during slow wave sleep (SWS), the entire cortical network can swi...
STUDY OBJECTIVES: The mechanisms responsible for the homeostatic decrease of slow-wave activity (SWA...
Study Objectives: The mechanisms responsible for the homeostatic decrease of slow-wave activity (SWA...
STUDY OBJECTIVE: Sleep slow-wave activity (SWA, EEG power between 0.5 and 4.0 Hz) decreases homeosta...
Slow oscillations (< 1 Hz) in the non-rapid eye movement (NREM) sleep electroencephalogram (EEG) res...
The electrical activity of the brain does not only reflect the current level of arousal, ongoing beh...
EEG slow waves, the hallmarks of NREM sleep are thought to be crucial for the regulation of several ...
EEG slow waves, the hallmarks of NREM sleep are thought to be crucial for the regulation of several ...
<p>Previous work showed that two types of slow waves are temporally dissociated during the transitio...
Sleep is a behavior commonly observed in a large number of animal species. However, neuroscientists ...
The regulation of the timing of sleep is thought to be linked to the temporal dynamics of slow-wave ...
Slow waves (SWs, 0.5–4 Hz) in field potentials during sleep reflect synchronized alternations betwee...
Sleep slow waves are the major electrophysiological features of non-rapid eye movement (NREM) sleep....
Brain electrical activity is largely composed of oscillations at characteristic frequencies. These r...
Slow wave activity (SWA, 0.5-4 Hz) represents the predominant EEG oscillatory activity during slow w...
Intracellular studies reveal that, during slow wave sleep (SWS), the entire cortical network can swi...