924 resultados para NREM sleep
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Understanding the function of variation in sleep requires studies in the natural ecological conditions in which sleep evolved. Sleep has an impact on individual performance and hence may integrate the costs and benefits of investing in processes that are sensitive to sleep, such as immunity or coping with stress. Because dark and pale melanic animals differentially regulate energy homeostasis, immunity and stress hormone levels, the amount and/or organization of sleep may covary with melanin-based colour. We show here that wild, cross-fostered nestling barn owls (Tyto alba) born from mothers displaying more black spots had shorter non-REM (rapid eye movement) sleep bouts, a shorter latency until the occurrence of REM sleep after a bout of wakefulness and more wakefulness bouts. In male nestlings, the same sleep traits also correlated with their own level of spotting. Because heavily spotted male nestlings and the offspring of heavily spotted biological mothers switched sleep-wakefulness states more frequently, we propose the hypothesis that they could be also behaviourally more vigilant. Accordingly, nestlings from mothers displaying many black spots looked more often towards the nest entrance where their parents bring food and towards their sibling against whom they compete. Owlets from heavily spotted mothers might invest more in vigilance, thereby possibly increasing associated costs due to sleep fragmentation. We conclude that different strategies of the regulation of brain activity have evolved and are correlated with melanin-based coloration.
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BACKGROUND: Positional therapy that prevents patients from sleeping supine has been used for many years to manage positional obstructive sleep apnea (OSA). However, patients' usage at home and the long term efficacy of this therapy have never been objectively assessed. METHODS: Sixteen patients with positional OSA who refused or could not tolerate continuous positive airway pressure (CPAP) were enrolled after a test night study (T0) to test the efficacy of the positional therapy device. The patients who had a successful test night were instructed to use the device every night for three months. Nightly usage was monitored by an actigraphic recorder placed inside the positional device. A follow-up night study (T3) was performed after three months of positional therapy. RESULTS: Patients used the device on average 73.7 ± 29.3% (mean ± SD) of the nights for 8.0 ± 2.0 h/night. 10/16 patients used the device more than 80% of the nights. Compared to the baseline (diagnostic) night, mean apnea-hypopnea index (AHI) decreased from 26.7 ± 17.5 to 6.0 ± 3.4 with the positional device (p<0.0001) during T0 night. Oxygen desaturation (3%) index also fell from 18.4 ± 11.1 to 7.1 ± 5.7 (p = 0.001). Time spent supine fell from 42.8 ± 26.2% to 5.8 ± 7.2% (p < 0.0001). At three months (T3), the benefits persisted with no difference in AHI (p = 0.58) or in time spent supine (p = 0.98) compared to T0 night. The Epworth sleepiness scale showed a significant decrease from 9.4 ± 4.5 to 6.6 ± 4.7 (p = 0.02) after three months. CONCLUSIONS: Selected patients with positional OSA can be effectively treated by a positional therapy with an objective compliance of 73.7% of the nights and a persistent efficacy after three months.
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Rapport de synthèseLe syndrome d'apnées obstructives du sommeil (SAOS) est une pathologie respiratoire fréquente. Sa prévalence est estimée entre 2 et 5% de la population adulte générale. Ses conséquences sont importantes. Notamment, une somnolence diurne, des troubles de la concentration, des troubles de la mémoire et une augmentation du risque d'accident de la route et du travail. Il représente également un facteur de risque cardiovasculaire indépendant.Ce syndrome est caractérisé par la survenue durant le sommeil d'obstructions répétées des voies aériennes supérieures. L'arrêt ou la diminution d'apport en oxygène vers les poumons entraîne des épisodes de diminution de la saturation en oxygène de l'hémoglobine. Les efforts ventilatoires visant à lever l'obstacle présent sur les voies aériennes causent de fréquents réveils à l'origine d'une fragmentation du sommeil.La polysomnographie (PSG) représente le moyen diagnostic de choix. Il consiste en l'enregistrement dans un laboratoire du sommeil et en présence d'un technicien diplômé, du tracé électroencéphalographique (EEG), de l'électrooculogramme (EOG), de l'électromyogramme mentonnier (EMG), du flux respiratoire nasal, de l'oxymétrie de pouls, de la fréquence cardiaque, de l'électrocardiogramme (ECG), des mouvements thoraciques et abdominaux, de la position du corps et des mouvements des jambes. L'examen est filmé par caméra infrarouge et les sons sont enregistrés.Cet examen permet entre autres mesures, de déterminer les événements respiratoires obstructifs nécessaires au diagnostic de syndrome d'apnée du sommeil. On définit une apnée lors d'arrêt complet du débit aérien durant au moins 10 secondes et une hypopnée en cas, soit de diminution franche de l'amplitude du flux respiratoire supérieure à 50% durant au moins 10 secondes, soit de diminution significative (20%) de l'amplitude du flux respiratoire pendant au minimum 10 secondes associée à un micro-éveil ou à une désaturation d'au moins 3% par rapport à la ligne de base. La détection des micro-éveils se fait en utilisant les dérivations électroencéphalographiques, électromyographiques et électrooculographiques. Il existe des critères visuels de reconnaissance de ces éveils transitoire: apparition de rythme alpha (8.1 à 12.0 Hz) ou beta (16 à 30 Hz) d'une durée supérieure à 3 secondes [20-21].Le diagnostic de S AOS est retenu si l'on retrouve plus de 5 événements respiratoires obstructifs par heure de sommeil associés soit à une somnolence diurne évaluée selon le score d'Epworth ou à au moins 2 symptômes parmi les suivants: sommeil non réparateur, étouffements nocturne, éveils multiples, fatigue, troubles de la concentration. Le S AOS est gradué en fonction du nombre d'événements obstructifs par heure de sommeil en léger (5 à 15), modéré (15 à 30) et sévère (>30).La polysomnographie (PSG) comporte plusieurs inconvénients pratiques. En effet, elle doit être réalisée dans un laboratoire du sommeil avec la présence permanente d'un technicien, limitant ainsi son accessibilité et entraînant des délais diagnostiques et thérapeutiques. Pour ces mêmes raisons, il s'agit d'un examen onéreux.La polygraphie respiratoire (PG) représente l'alternative diagnostique au gold standard qu'est l'examen polysomnographique. Cet examen consiste en l'enregistrement en ambulatoire, à savoir au domicile du patient, du flux nasalrespiratoire, de l'oxymétrie de pouls, de la fréquence cardiaque, de la position du corps et du ronflement (par mesure de pression).En raison de sa sensibilité et sa spécificité moindre, la PG reste recommandée uniquement en cas de forte probabilité de SAOS. Il existe deux raisons principales à l'origine de la moindre sensibilité de l'examen polygraphique. D'une part, du fait que l'état de veille ou de sommeil n'est pas déterminé avec précision, il y a dilution des événements respiratoires sur l'ensemble de l'enregistrement et non sur la période de sommeil uniquement. D'autre part, en l'absence de tracé EEG, la quantification des micro-éveils est impossible. Il n'est donc pas possible dans l'examen poly graphique, de reconnaître une hypopnée en cas de diminution de flux respiratoire de 20 à 50% non associée à un épisode de désaturation de l'hémoglobine de 3% au moins. Alors que dans l'examen polysomnographique, une telle diminution du flux respiratoire pourrait être associée à un micro-éveil et ainsi comptabilisée en tant qu'hypopnée.De ce constat est né la volonté de trouver un équivalent de micro-éveil en polygraphie, en utilisant les signaux à disposition, afin d'augmenter la sensibilité de l'examen polygraphique.Or plusieurs études ont démontrés que les micro-éveils sont associés à des réactions du système nerveux autonome. Lors des micro-éveils, on met en évidence la survenue d'une vasoconstriction périphérique. La variation du tonus sympathique associée aux micro-éveils peut être mesurée par différentes méthodes. Les variations de l'amplitude de l'onde de pouls mesurée par pulsoxymétrie représentant un marqueur fiable de la vasoconstriction périphérique associée aux micro-réveils, il paraît donc opportun d'utiliser ce marqueur autonomique disponible sur le tracé des polygraphies ambulatoires afin de renforcer la sensibilité de cet examen.Le but de l'étude est d'évaluer la sensibilité des variations de l'amplitude de l'onde de pouls pour détecter des micro-réveils corticaux afin de trouver un moyen d'augmenter la sensibilité de l'examen polygraphique et de renforcer ainsi sont pouvoir diagnostic.L'objectif est de démontrer qu'une diminution significative de l'amplitude de l'onde pouls est concomitante à une activation corticale correspondant à un micro¬réveil. Cette constatation pourrait permettre de déterminer une hypopnée, en polygraphie, par une diminution de 20 à 50% du flux respiratoire sans désaturation de 3% mais associée à une baisse significative de l'amplitude de pouls en postulant que l'événement respiratoire a entraîné un micro-réveil. On retrouve par cette méthode les mêmes critères de scoring d'événements respiratoires en polygraphie et en polysomnographie, et l'on renforce la sensibilité de la polygraphie par rapport au gold standard polysomnographique.La méthode consiste à montrer en polysomnographie qu'une diminution significative de l'amplitude de l'onde de pouls mesurée par pulsoxymétrie est associée à une activation du signal électroencéphalographique, en réalisant une analyse spectrale du tracé EEG lors des baisses d'amplitude du signal d'onde de pouls.Pour ce faire nous avons réalisé une étude rétrospective sur plus de 1000 diminutions de l'amplitude de l'onde de pouls sur les tracés de 10 sujets choisis de manière aléatoire parmi les patients référés dans notre centre du sommeil (CIRS) pour suspicion de trouble respiratoire du sommeil avec somnolence ou symptomatologie diurne.Les enregistrements nocturnes ont été effectués de manière standard dans des chambres individuelles en utilisant le système d'acquisition Embla avec l'ensemble des capteurs habituels. Les données ont été par la suite visuellement analysées et mesurées en utilisant le software Somnologica version 5.1, qui fournit un signal de l'amplitude de l'onde de pouls (puise wave amplitude - PWA).Dans un premier temps, un technicien du sommeil a réalisé une analyse visuelle du tracé EEG, en l'absence des données du signal d'amplitude d'onde de pouls. Il a déterminé les phases d'éveil et de sommeil, les stades du sommeil et les micro¬éveils selon les critères standards. Les micro-éveils sont définis lors d'un changement abrupt dans la fréquence de l'EEG avec un pattern d'ondes thêta-alpha et/ou une fréquence supérieure à 16 Hz (en l'absence de fuseau) d'une durée d'au minimum trois secondes. Si cette durée excède quinze secondes, l'événement correspond à un réveil.Puis, deux investigateurs ont analysé le signal d'amplitude d'onde de pouls, en masquant les données du tracé EEG qui inclut les micro-éveils. L'amplitude d'onde de pouls est calculée comme la différence de valeur entre le zénith et le nadir de l'onde pour chaque cycle cardiaque. Pour chaque baisse de l'amplitude d'onde de pouls, la plus grande et la plus petite amplitude sont déterminées et le pourcentage de baisse est calculé comme le rapport entre ces deux amplitudes. On retient de manière arbitraire une baisse d'au moins 20% comme étant significative. Cette limite a été choisie pour des raisons pratiques et cliniques, dès lors qu'elle représentait, à notre sens, la baisse minimale identifiable à l'inspection visuelle. Chaque baisse de PWA retenue est divisée en 5 périodes contiguës de cinq secondes chacune. Deux avant, une pendant et deux après la baisse de PWA.Pour chaque période de cinq secondes, on a pratiqué une analyse spectrale du tracé EEG correspondant. Le canal EEG C4-A1 est analysé en utilisant la transformée rapide de Fourier (FFT) pour chaque baisse de PWA et pour chaque période de cinq secondes avec une résolution de 0.2 Hz. La distribution spectrale est catégorisée dans chaque bande de fréquence: delta (0.5 à 4.0 Hz); thêta (4.1 à 8.0Hz); alpha (8.1 à 12.0 Hz); sigma (12.1 à 16 Hz) et beta (16.1 à 30.0 Hz). La densité de puissance (power density, en μΥ2 ) pour chaque bande de fréquence a été calculée et normalisée en tant que pourcentage de la puissance totale. On a déterminé, ensuite, la différence de densité de puissance entre les 5 périodes par ANOVA on the rank. Un test post hoc Tukey est été utilisé pour déterminer si les différences de densité de puissance étaient significatives. Les calculs ont été effectués à l'aide du software Sigmastat version 3.0 (Systat Software San Jose, California, USA).Le principal résultat obtenu dans cette étude est d'avoir montré une augmentation significative de la densité de puissance de l'EEG pour toutes les bandes de fréquence durant la baisse de l'amplitude de l'onde de pouls par rapport à la période avant et après la baisse. Cette augmentation est par ailleurs retrouvée dans la plupart des bande de fréquence en l'absence de micro-réveil visuellement identifié.Ce résultat témoigné donc d'une activation corticale significative associée à la diminution de l'onde de pouls. Ce résulat pourrait permettre d'utiliser les variations de l'onde de pouls dans les tracés de polygraphie comme marqueur d'une activation corticale. Cependant on peut dire que ce marqueur est plus sensible que l'analyse visuelle du tracé EEG par un technicien puisque qu'on notait une augmentation de lactivité corticale y compris en l'absence de micro-réveil visuellement identifié. L'application pratique de ces résultats nécessite donc une étude prospective complémentaire.
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Currently, there is an increased interest in γ-hydroxybutyric acid (GHB) and its effects onsleep. This compound, sometimes referred to as 'rape drug', was recently approved as atreatment for the sleep disorder narcolepsy. Although several studies suggest that GHBinduces slow-wave sleep duration and improves sleep quality by increasing EEG slow-waveactivity, others question its ability to induce physiological sleep. GHB's mechanism of actionis still unclear, although in vivo and in vitro it seems to act at high doses as a low-affinityagonist of GABAB receptors. Furthermore, the role GABAB receptors play in sleep and theelectroencephalogram (EEG) is largely unknown.The aim of this project was therefore to investigate the effects of GHB on sleep and EEG, theinvolvement of GABAB receptors in mediating these effects, as well as the intrinsic role ofeach GABAB receptor subunit in the regulation of sleep. Thus, we administered GHB andbaclofen (BAC, a high-affinity agonist at GABAB receptor) to mice lacking the different GABABreceptor subunits and to healthy human volunteers.Our results, both in mice and humans, showed that GHB produced slow waves exclusivelythrough the stimulation of GABAB receptors, but did not induce physiological sleepnecessary to reduce sleep need and to increase cognitive performance. Unlike GHB, BACaffected the homeostatic regulation of sleep (sleep need) and induced a delayedhypersomnia. Finally, GABAB receptor and its subunits seem to play an important role insleep and in particular its circadian distribution.
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Objective: To determine the variation in prevalence of temporomandibular disorders (TMD), other side effects, and technical complications during 5 years of sleep apnea treatment with a mandibular advancement device. Materials and Methods: Forty patients diagnosed with obstructive sleep apnea received an adjustable appliance at 70% of the maximum protrusion. The protrusion was then progressively increased. TMD (diagnosed according to the Research Diagnostic Criteria for TMD), overjet, overbite, occlusal contacts, subjective side effects, and technical complications were recorded before and a mean of 14, 21, and 58 months after treatment and analyzed by the Wilcoxon test (P Less-than .05). Results: Fifteen patients still used the oral appliance at the 5-year follow-up, and no significant variation in TMD prevalence was observed. Subjective side effects were common, and a significant reduction was found in overjet, overbite, and in the number of occlusal contacts. Furthermore, the patients made a mean of 2.5 unscheduled dental visits per year and a mean of 0.8 appliance repairs/relines per year by a dental technician. The most frequent unscheduled visits were needed during the first year and were a result of acrylic breakage on the lateral telescopic attachment, poor retention, and other adjustments to improve comfort. Conclusions: Five-year oral appliance treatment does not affect TMD prevalence but is associated with permanent occlusal changes in most sleep apnea patients during the first 2 years. Patients seek several unscheduled visits, mainly because of technical complications.
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With the aim of improving human health, scientists have been using an approach referred to as translational research, in which they aim to convey their laboratory discoveries into clinical applications to help prevent and cure disease. Such discoveries often arise from cellular, molecular, and physiological studies that progress to the clinical level. Most of the translational work is done using animal models that share common genes, molecular pathways, or phenotypes with humans. In this article, we discuss how translational work is carried out in various animal models and illustrate its relevance for human sleep research and sleep-related disorders.
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Sleep spindles are approximately 1 s bursts of 10-16 Hz activity that occur during stage 2 sleep. Spindles are highly synchronous across the cortex and thalamus in animals, and across the scalp in humans, implying correspondingly widespread and synchronized cortical generators. However, prior studies have noted occasional dissociations of the magnetoencephalogram (MEG) from the EEG during spindles, although detailed studies of this phenomenon have been lacking. We systematically compared high-density MEG and EEG recordings during naturally occurring spindles in healthy humans. As expected, EEG was highly coherent across the scalp, with consistent topography across spindles. In contrast, the simultaneously recorded MEG was not synchronous, but varied strongly in amplitude and phase across locations and spindles. Overall, average coherence between pairs of EEG sensors was approximately 0.7, whereas MEG coherence was approximately 0.3 during spindles. Whereas 2 principle components explained approximately 50% of EEG spindle variance, >15 were required for MEG. Each PCA component for MEG typically involved several widely distributed locations, which were relatively coherent with each other. These results show that, in contrast to current models based on animal experiments, multiple asynchronous neural generators are active during normal human sleep spindles and are visible to MEG. It is possible that these multiple sources may overlap sufficiently in different EEG sensors to appear synchronous. Alternatively, EEG recordings may reflect diffusely distributed synchronous generators that are less visible to MEG. An intriguing possibility is that MEG preferentially records from the focal core thalamocortical system during spindles, and EEG from the distributed matrix system.
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OBJECTIVE: To assess health-related quality of life (HRQOL) in abatacept-treated children/adolescents with juvenile idiopathic arthritis (JIA). METHODS: In this phase III, double-blind, placebo-controlled trial, subjects with active polyarticular course JIA and an inadequate response/intolerance to ≥1 disease-modifying antirheumatic drug (including biologics) received abatacept 10 mg/kg plus methotrexate (MTX) during the 4-month open-label period (period A). Subjects achieving the American College of Rheumatology Pediatric 30 criteria for improvement (defined "responders") were randomized to abatacept or placebo (plus MTX) in the 6-month double-blind withdrawal period (period B). HRQOL assessments included 15 Child Health Questionnaire (CHQ) health concepts plus the physical (PhS) and psychosocial summary scores (PsS), pain (100-mm visual analog scale), the Children's Sleep Habits Questionnaire, and a daily activity participation questionnaire. RESULTS: A total of 190 subjects from period A and 122 from period B were eligible for analysis. In period A, there were substantial improvements across all of the CHQ domains (greatest improvement was in pain/discomfort) and the PhS (8.3 units) and PsS (4.3 units) with abatacept. At the end of period B, abatacept-treated subjects had greater improvements versus placebo in all domains (except behavior) and both summary scores. Similar improvement patterns were seen with pain and sleep. For participation in daily activities, an additional 2.6 school days/month and 2.3 parents' usual activity days/month were gained in period A responders with abatacept, and further gains were made in period B (1.9 versus 0.9 [P = 0.033] and 0.2 versus -1.3 [P = 0.109] school days/month and parents' usual activity days/month, respectively, in abatacept- versus placebo-treated subjects). CONCLUSION: Improvements in HRQOL were observed with abatacept, providing real-life tangible benefits to children with JIA and their parents/caregivers.
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A loss in the necessary amount of sleep alters expression of genes and proteins implicated in brain plasticity, but key proteins that render neuronal circuits sensitive to sleep disturbance are unknown. We show that mild (4-6 h) sleep deprivation (SD) selectively augmented the number of NR2A subunits of NMDA receptors on postsynaptic densities of adult mouse CA1 synapses. The greater synaptic NR2A content facilitated induction of CA3-CA1 long-term depression in the theta frequency stimulation range and augmented the synaptic modification threshold. NR2A-knock-out mice maintained behavioral response to SD, including compensatory increase in post-deprivation resting time, but hippocampal synaptic plasticity was insensitive to sleep loss. After SD, the balance between synaptically activated and slowly recruited NMDA receptor pools during temporal summation was disrupted. Together, these results indicate that NR2A is obligatory for the consequences of sleep loss on hippocampal synaptic plasticity. These findings could advance pharmacological strategies aiming to sustain hippocampal function during sleep restriction.
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The role of GABA(B) receptors in sleep is still poorly understood. GHB (γ-hydroxybutyric acid) targets these receptors and is the only drug approved to treat the sleep disorder narcolepsy. GABA(B) receptors are obligate dimers comprised of the GABA(B2) subunit and either one of the two GABA(B1) subunit isoforms, GABA(B1a) and GABA(B1b). To better understand the role of GABA(B) receptors in sleep regulation, we performed electroencephalogram (EEG) recordings in mice devoid of functional GABA(B) receptors (1(-/-) and 2(-/-)) or lacking one of the subunit 1 isoforms (1a(-/-) and 1b(-/-)). The distribution of sleep over the day was profoundly altered in 1(-/-) and 2(-/-) mice, suggesting a role for GABA(B) receptors in the circadian organization of sleep. Several other sleep and EEG phenotypes pointed to a more prominent role for GABA(B1a) compared with the GABA(B1b) isoform. Moreover, we found that GABA(B1a) protects against the spontaneous seizure activity observed in 1(-/-) and 2(-/-) mice. We also evaluated the effects of the GHB-prodrug GBL (γ-butyrolactone) and of baclofen (BAC), a high-affinity GABA(B) receptor agonist. Both drugs induced a state distinct from physiological sleep that was not observed in 1(-/-) and 2(-/-) mice. Subsequent sleep was not affected by GBL whereas BAC was followed by a delayed hypersomnia even in 1(-/-) and 2(-/-) mice. The differential effects of GBL and BAC might be attributed to differences in GABA(B)-receptor affinity. These results also indicate that all GBL effects are mediated through GABA(B) receptors, although these receptors do not seem to be involved in mediating the BAC-induced hypersomnia.
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BACKGROUND AND PURPOSE: Sleep disordered breathing (SDB) is frequent in acute stroke patients and is associated with early neurologic worsening and poor outcome. Although continuous positive airway pressure (CPAP) effectively treats SDB, compliance is low. The objective of the present study was to assess the tolerance and the efficacy of a continuous high-flow-rate air administered through an open nasal cannula (transnasal insufflation, TNI), a less-intrusive method, to treat SDB in acute stroke patients. METHODS: Ten patients (age, 56.8 ± 10.7 years), with SDB ranging from moderate to severe (apnea-hypopnea index, AHI, >15/h of sleep) and on a standard sleep study at a mean of 4.8 ± 3.7 days after ischemic stroke (range, 1-15 days), were selected. The night after, they underwent a second sleep study while receiving TNI (18 L/min). RESULTS: TNI was well tolerated by all patients. For the entire group, TNI decreased the AHI from 40.4 ± 25.7 to 30.8 ± 25.7/h (p = 0.001) and the oxygen desaturation index >3% from 40.7 ± 28.4 to 31 ± 22.5/h (p = 0.02). All participants except one showed a decrease in AHI. The percentage of slow-wave sleep significantly increased with TNI from 16.7 ± 8.2% to 22.3 ± 7.4% (p = 0.01). There was also a trend toward a reduction in markers of sleep disruption (number of awakenings, arousal index). CONCLUSIONS: TNI improves SDB indices, and possibly sleep parameters, in stroke patients. Although these changes are modest, our findings suggest that TNI is a viable treatment alternative to CPAP in patients with SDB in the acute phase of ischemic stroke.
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Many effects of nitric oxide (NO) are mediated by the activation of guanylyl cyclases and subsequent production of the second messenger cyclic guanosine-3',5'-monophosphate (cGMP). cGMP activates cGMP-dependent protein kinases (PRKGs), which can therefore be considered downstream effectors of NO signaling. Since NO is thought to be involved in the regulation of both sleep and circadian rhythms, we analyzed these two processes in mice deficient for cGMP-dependent protein kinase type I (PRKG1) in the brain. Prkg1 mutant mice showed a strikingly altered distribution of sleep and wakefulness over the 24 hours of a day as well as reductions in rapid-eye-movement sleep (REMS) duration and in non-REM sleep (NREMS) consolidation, and their ability to sustain waking episodes was compromised. Furthermore, they displayed a drastic decrease in electroencephalogram (EEG) power in the delta frequency range (1-4 Hz) under baseline conditions, which could be normalized after sleep deprivation. In line with the re-distribution of sleep and wakefulness, the analysis of wheel-running and drinking activity revealed more rest bouts during the activity phase and a higher percentage of daytime activity in mutant animals. No changes were observed in internal period length and phase-shifting properties of the circadian clock while chi-squared periodogram amplitude was significantly reduced, hinting at a less robust oscillator. These results indicate that PRKG1 might be involved in the stabilization and output strength of the circadian oscillator in mice. Moreover, PRKG1 deficiency results in an aberrant pattern, and consequently a reduced quality, of sleep and wakefulness, possibly due to a decreased wake-promoting output of the circadian system impinging upon sleep.