Both sleep and glutamatergic signaling in the brain are tightly controlled and homeostatically regulated. Sleep homeostasis is reliably reflected by predictable changes in brain electrical activity in waking and sleep, yet the underlying molecular mechanisms remain elusive. Current hypotheses posit that recovery sleep following prolonged waking restores efficient functioning of the brain, for example by keeping glutamatergic signaling in a homeostatic range. We recently provided evidence in humans and mice that metabotropic glutamate receptors of subtype-5 (mGluR5) contribute to the brain's coping mechanisms with sleep deprivation. Here we combined in 31 healthy men, proton magnetic resonance spectroscopy to measure the levels of glutamate ...
Aims: Low-frequency brain oscillations in NREM sleep provide a reliable estimate of homeostatic slee...
BACKGROUND: Sleep deprivation (wake therapy) provides rapid clinical relief in many patients with ma...
Neuronal firing patterns, neuromodulators, and cerebral metabolism change across sleep-waking states...
Both sleep and glutamatergic signaling in the brain are tightly controlled and homeostatically regul...
Both sleep and glutamatergic signaling in the brain are tightly controlled and homeostatically regul...
Sleep and brain glutamatergic signaling are homeostatically regulated. Recovery sleep following prol...
Sleep and brain glutamatergic signaling are homeostatically regulated. Recovery sleep following prol...
Increased sleep time and intensity quantified as low-frequency brain electrical activity after sleep...
Increased sleep time and intensity quantified as low-frequency brain electrical activity after sleep...
Increased sleep time and intensity quantified as low-frequency brain electrical activity after sleep...
Increased sleep time and intensity quantified as low-frequency brain electrical activity after sleep...
Increased sleep time and intensity quantified as low-frequency brain electrical activity after sleep...
Increased sleep time and intensity quantified as low-frequency brain electrical activity after sleep...
Sleep is a universal behavior observed across all species of the animal kingdom. One characteristic ...
Sleep is a universal behavior observed across all species of the animal kingdom. One characteristic ...
Aims: Low-frequency brain oscillations in NREM sleep provide a reliable estimate of homeostatic slee...
BACKGROUND: Sleep deprivation (wake therapy) provides rapid clinical relief in many patients with ma...
Neuronal firing patterns, neuromodulators, and cerebral metabolism change across sleep-waking states...
Both sleep and glutamatergic signaling in the brain are tightly controlled and homeostatically regul...
Both sleep and glutamatergic signaling in the brain are tightly controlled and homeostatically regul...
Sleep and brain glutamatergic signaling are homeostatically regulated. Recovery sleep following prol...
Sleep and brain glutamatergic signaling are homeostatically regulated. Recovery sleep following prol...
Increased sleep time and intensity quantified as low-frequency brain electrical activity after sleep...
Increased sleep time and intensity quantified as low-frequency brain electrical activity after sleep...
Increased sleep time and intensity quantified as low-frequency brain electrical activity after sleep...
Increased sleep time and intensity quantified as low-frequency brain electrical activity after sleep...
Increased sleep time and intensity quantified as low-frequency brain electrical activity after sleep...
Increased sleep time and intensity quantified as low-frequency brain electrical activity after sleep...
Sleep is a universal behavior observed across all species of the animal kingdom. One characteristic ...
Sleep is a universal behavior observed across all species of the animal kingdom. One characteristic ...
Aims: Low-frequency brain oscillations in NREM sleep provide a reliable estimate of homeostatic slee...
BACKGROUND: Sleep deprivation (wake therapy) provides rapid clinical relief in many patients with ma...
Neuronal firing patterns, neuromodulators, and cerebral metabolism change across sleep-waking states...