- Front Matter
- 10.1016/j.jsmc.2010.12.011
Foreword
- Feb 17, 2011
- Sleep Medicine Clinics
- Teofilo Lee-Chiong
Foreword
Introduction: Sleep is defined on the basis of behavioural and physiological criteria dividing it into two states : non rapid eye movement (NREM) sleep which is subdivided into three stages (N1,N2,N3) abs rapid eye movement (REM) sleep characterized by rapid eye movements, muscle atonia and desynchronized EEG [1]. The most important step in assessing a patient with a sleep complaint is obtaining a detailed history including family and previous histories. Material and Methods: There were analyzed articles from PubMed database from the last 5 years 2019-2024, mentioned such words as “illnesses”, “sleep deprivation” [2]. As well as scientific works that have not lost their relevance today [3-6]. Results: For example, critically ill patients frequently experience poor sleep, characterized by frequent disruptions, loss of circadian rhythms and pancity of time spent in restorative sleep stages. Factors that are associated with sleep stages. One of them is critical condition in the intensive care unit ICU include patient-ventilator dyssynchrony, medications, patient care and interactions environmental noise and light [ 7-24]. Along with ICU patients, also medical human resources ICU suffer from sleep disorders due to psycho-emotional burnout (PEB) [25] and chronic fatigue syndrome [7], sometimes not different from wartime PEB [ 26]. Conclusion: Sleep disturbance during intensive care unit admission is common. Sleep disturbance has been observed in survivors of critical illness even after transfer out of the ICU. Sleep disturbance is common in critically ill patients up to 12 months after hospital discharge. Like, and medical human resources ICU, may suffer from sleep problems throughout their lives.
Foreword
Foreword
Sleep and the Peripheral Vascular System
Sleep and the Peripheral Vascular System
Local Aspects of Avian Non-REM and REM Sleep
Birds exhibit two types of sleep that are in many respects similar to mammalian rapid eye movement (REM) and non-REM (NREM) sleep. As in mammals, several aspects of avian sleep can occur in a local manner within the brain. Electrophysiological evidence of NREM sleep occurring more deeply in one hemisphere, or only in one hemisphere – the latter being a phenomenon most pronounced in dolphins – was actually first described in birds. Such asymmetric or unihemispheric NREM sleep occurs with one eye open, enabling birds to visually monitor their environment for predators. Frigatebirds primarily engage in this form of sleep in flight, perhaps to avoid collisions with other birds. In addition to interhemispheric differences in NREM sleep intensity, the intensity of NREM sleep is homeostatically regulated in a local, use-depended manner within each hemisphere. Furthermore, the intensity and temporo-spatial distribution of NREM sleep-related slow waves varies across layers of the avian hyperpallium – a primary visual area – with the slow waves occurring first in, and propagating through and outward from, thalamic input layers. Slow waves also have the greatest amplitude in these layers. Although most research has focused on NREM sleep, there are also local aspects to avian REM sleep. REM sleep-related reductions in skeletal muscle tone appear largely restricted to muscles involved in maintaining head posture. Other local aspects of sleep manifest as a mixture of features of NREM and REM sleep occurring simultaneously in different parts of the neuroaxis. Like monotreme mammals, ostriches often exhibit brainstem-mediated features of REM sleep (muscle atonia and REMs) while the hyperpallium shows EEG slow waves typical of NREM sleep. Finally, although mice show slow waves in thalamic input layers of primary sensory cortices during REM sleep, this is not the case in the hyperpallium of pigeons, suggesting that this phenomenon is not a universal feature of REM sleep. Collectively, the local aspects of sleep described in birds and mammals reveal that wakefulness, NREM sleep, and REM sleep are not always discrete states.
Read moreIsoflurane Anesthesia Does Not Satisfy the Homeostatic Need for Rapid Eye Movement Sleep
Sleep and general anesthesia are distinct states of consciousness that share many traits. Prior studies suggest that propofol anesthesia facilitates recovery from rapid eye movement (REM) and non-REM (NREM) sleep deprivation, but the effects of inhaled anesthetics have not yet been studied. We tested the hypothesis that isoflurane anesthesia would also facilitate recovery from REM sleep deprivation. Six rats were implanted with superficial cortical, deep hippocampal, and nuchal muscle electrodes. Animals were deprived of REM sleep for 24 hours and then (1) allowed to sleep ad libitum for 8 hours or (2) were immediately anesthetized with isoflurane for a 4-hour period followed by ad libitum sleep for 4 hours. The percentage of REM and NREM sleep after the protocols was compared with similar conditions without sleep deprivation. Hippocampal activity during isoflurane anesthesia was also compared with activity during REM sleep and active waking. Recovery after deprivation was associated with a 5.7-fold increase (P = 0.0005) in REM sleep in the first 2 hours and a 2.6-fold increase (P = 0.004) in the following 2 hours. Animals that underwent isoflurane anesthesia after deprivation demonstrated a 3.6-fold increase (P = 0.001) in REM sleep in the first 2 hours of recovery and a 2.2-fold increase (P = 0.003) in the second 2 hours. There were no significant differences in REM sleep rebound between the first 4 hours after deprivation and the first 4 hours after both deprivation and isoflurane anesthesia. Hippocampal activity during isoflurane anesthesia was not affected by REM sleep deprivation, and the probability distribution of events during anesthesia was more similar to that of waking than to REM sleep. Unlike propofol, isoflurane does not satisfy the homeostatic need for REM sleep. Furthermore, the regulation and organization of hippocampal events during anesthesia are unlike sleep. We conclude that different anesthetics have distinct interfaces with sleep.
Read moreRapid eye movement sleep behaviour disorder in patients with narcolepsy is associated with hypocretin-1 deficiency
Rapid eye movement sleep behaviour disorder is characterized by dream-enacting behaviour and impaired motor inhibition during rapid eye movement sleep. Rapid eye movement sleep behaviour disorder is commonly associated with neurodegenerative disorders, but also reported in narcolepsy with cataplexy. Most narcolepsy with cataplexy patients lack the sleep-wake, and rapid eye movement sleep, motor-regulating hypocretin neurons in the lateral hypothalamus. In contrast, rapid eye movement sleep behaviour disorder and hypocretin deficiency are rare in narcolepsy without cataplexy. We hypothesized that rapid eye movement sleep behaviour disorder coexists with cataplexy in narcolepsy due to hypocretin deficiency. In our study, rapid eye movement sleep behaviour disorder was diagnosed by the International Classification of Sleep Disorders (2nd edition) criteria in 63 narcolepsy patients with or without cataplexy. Main outcome measures were: rapid eye movement sleep behaviour disorder symptoms; short and long muscle activations per hour rapid eye movement and non-rapid eye movement sleep; and periodic and non-periodic limb movements per hour rapid eye movement and non-rapid eye movement sleep. Outcome variables were analysed in relation to cataplexy and hypocretin deficiency with uni- and multivariate logistic/linear regression models, controlling for possible rapid eye movement sleep behaviour disorder biasing factors (age, gender, disease duration, previous anti-cataplexy medication). Only hypocretin deficiency independently predicted rapid eye movement sleep behaviour disorder symptoms (relative risk = 3.69, P = 0.03), long muscle activations per hour rapid eye movement sleep (ln-coefficient = 0.81, P < 0.01), and short muscle activations per hour rapid eye movement sleep (ln-coefficient = 1.01, P < 0.01). Likewise, periodic limb movements per hour rapid eye movement and non-rapid eye movement sleep were only associated with hypocretin deficiency (P < 0.01). A significant association between hypocretin deficiency and cataplexy was confirmed (P < 0.01). In a sub-analysis, hypocretin deficiency suggested the association of periodic limb movements and rapid eye movement sleep behaviour disorder outcomes (symptoms, non-periodic short and long muscle activity) in rapid eye movement sleep. Our results support the hypothesis that hypocretin deficiency is independently associated with rapid eye movement sleep behaviour disorder in narcolepsy. Thus, hypocretin deficiency is linked to the two major disturbances of rapid eye movement sleep motor regulation in narcolepsy: rapid eye movement sleep behaviour disorder and cataplexy. Hypocretin deficiency is also significantly associated with periodic limb movements in rapid eye movement and non-rapid eye movement sleep, and provides a possible pathophysiological link between rapid eye movement sleep behaviour disorder and periodic limb movements in narcolepsy. The study supports the hypothesis that an impaired hypocretin system causes a general instability of motor regulation during wakefulness, rapid eye movement and non-rapid eye movement sleep in human narcolepsy.
Read moreSleep in lifetime posttraumatic stress disorder: a community-based polysomnographic study.
Sleep complaints are common in posttraumatic stress disorder (PTSD) and are included in the DSM criteria. Polysomnographic studies conducted on small samples of subjects with specific traumas have yielded conflicting results. We therefore evaluated polysomnographic sleep disturbances in PTSD. A representative cohort of young-adult community residents followed-up for 10 years for exposure to trauma and PTSD was used to select a subset for sleep studies for 2 consecutive nights and the intermediate day. Subjects were selected from a large health maintenance organization and are representative of the geographic area except for the extremes of the socioeconomic status range. The subset for the sleep study was selected from the 10-year follow-up of the cohort (n = 913 [91% of the initial sample]). Eligibility criteria included (1) subjects exposed to trauma during the preceding 5 years; (2) others who met PTSD criteria; and (3) a randomly preselected subsample. Of 439 eligible subjects, 292 (66.5%) participated, including 71 with lifetime PTSD. Main outcomes included standard polysomnographic measures of sleep induction, maintenance, staging, and fragmentation; standard measures of apnea/hypopnea and periodic leg movement; and results of the multiple sleep latency test. On standard measures of sleep disturbance, no differences were detected between subjects with PTSD and control subjects, regardless of history of trauma or major depression in the controls. Persons with PTSD had higher rates of brief arousals from rapid eye movement (REM) sleep. Shifts to lighter sleep and wake were specific to REM and were significantly different between REM and non-REM sleep (F(1,278) = 5.92; P =.02). We found no objective evidence for clinically relevant sleep disturbances in PTSD. An increased number of brief arousals from REM sleep was detected in subjects with PTSD. Sleep complaints in PTSD might represent amplified perceptions of brief arousals from REM sleep.
Read moreREM sleep reduction leads to fear overgeneralization via negatively modulating prefrontal theta oscillations
BackgroundFear overgeneralization, defined as the excessive fear response to non-threatening stimuli, is a hallmark of anxiety-related disorders. Sleep has long been recognized as a critical factor in the consolidation and processing of fear memories, with research suggesting that different sleep phases, particularly rapid eye movement (REM) and non-rapid eye movement (NREM) sleep, may have distinct roles. However, how sleep influences fear generalization remains largely unknown. We systematically investigated the dynamic effects of sleep phases and their associated neural oscillations on fear generalization recently after sleep manipulation and remotely 1 week later.MethodsIn a randomized controlled between-subjects experiment, 126 participants were assigned to the four groups: total sleep deprivation (SD), early-night (dominated by NREM sleep) SD, late-night (dominated by REM sleep) SD, and total sleep. Participants completed the fear conditioning test before the sleep-manipulated night, the recent fear generalization test after sleep, and the remote fear generalization test 1 week later. Both neuroimaging data and behavioral data (subjective risk ratings and objective skin conductance responses) were collected synchronously to analyze brain functional changes during generalized stimuli processing.ResultsSleep, particularly REM sleep phase, inhibits fear generalization, whereas late-night SD, by reducing REM sleep, induces fear overgeneralization comparable to total SD. The percentage of REM sleep was negatively associated with the degree of fear generalization and positively correlated with dorsolateral prefrontal cortex BOLD activity during the recent generalization test. Notably, prefrontal theta oscillations mediated 44% of REM sleep’s effects on fear generalization.ConclusionsThese findings demonstrate the essential role of post-conditioning REM sleep, particularly its reliance on theta oscillations in the frontal lobe, in mitigating fear overgeneralization.Supplementary InformationThe online version contains supplementary material available at 10.1186/s12916-025-04411-5.
Read moreNatural History of Sleep-disordered Breathing during Rapid Eye Movement Sleep. Relevance for Incident Cardiovascular Disease.
Rationale: Sleep-disordered breathing (SDB) occurring primarily during rapid eye movement (REM) sleep is a common clinical problem. The natural history of REM-related SDB and the associated cardiovascular sequelae of disease progression remain to be determined.Objectives: The objective of the current study was to describe the natural history of REM-related SDB, ascertain predictors of progression, and determine whether the evolution of REM-related SDB into non-REM (NREM) sleep is associated with incident cardiovascular events.Methods: Participants from the Sleep Heart Health Study with a baseline NREM apnea-hypopnea index (NREM-AHI) of <5 events/h and data from a follow-up sleep study along with information on incident cardiovascular disease were included in the study. Bivariate logistic regression was used to jointly model the predictors of disease progression based on the presence or absence of SDB during NREM and REM sleep using a cut-point of 5 events/h. Explanatory variables such as age, race, body mass index (BMI), change in BMI, and baseline REM-AHI were considered. Proportional hazards regression was then used to establish whether the development of SDB during NREM sleep was associated with incident cardiovascular disease.Results: The majority of the 1,908 participants included in the study did not develop SDB during NREM sleep. The likelihood of progression of SDB into NREM sleep did increase with higher baseline REM-AHI. BMI and an increase in BMI predicted progression of SDB in both NREM and REM sleep in men but not in women. There was a strong interdependence between developing a NREM-AHI of ≥5 events/h and worsening REM-AHI at follow-up with odds ratios of 6.01 and 4.47, in women and men, respectively. Moreover, the relative risk for incident cardiovascular events among those who developed a NREM-AHI of ≥5 events/h at the follow-up visit was elevated only in women with REM-related SDB at baseline.Conclusions: SDB during REM sleep is a relatively stable condition and does not progress in the majority of individuals. Progression of SDB into NREM sleep is associated with sex, weight, and age. SDB during REM and NREM sleep tends to develop concurrently. Finally, the development of SDB during NREM sleep is associated with incident cardiovascular events, but only in women with REM-related SDB at baseline.
Read moreGinseng Extract Regulates the Alterations of Sleep Architecture and EEG Power Spectra in Restraint Stressed Rats
Ginseng Extract Regulates the Alterations of Sleep Architecture and EEG Power Spectra in Restraint Stressed Rats
Oxygen consumption and neonatal sleep states
1. In thirty full-term infants in the first week of life, nursed in a constant volume, closed-circuit metabolism chamber in a neutral thermal environment (31.5-33.5 degrees C), measurements were made of oxygen consumption ( V(O2)) during periods of rapid eye movement (REM) sleep and non-rapid eye movement (NREM) sleep.2. The mean V(O2) during REM sleep was 5.97 ml. kg(-1). min(-1). In NREM sleep the mean V(O2) was 5.72 ml. kg(-1). min(-1). This difference was significant (paired t test P < 0.05).3. When the direction of sleep state change was taken into account the difference in V(O2) between the two states was much less when REM sleep preceded NREM than when the change was in the opposite direction. In nineteen infants in whom the change was from REM to NREM the difference in V(O2) (6.18 and 6.03 ml. kg(-1). min(-1)) was not significant (P > 0.05). The mean difference when the sleep state change was from NREM to REM was significant (P < 0.01), the values being 5.54 and 5.81 ml. kg(-1). min(-1) respectively.4. In the NREM state, a gradual diminution of V(O2) with time was consistently found. This was not the case in REM sleep.5. In twelve infants studied in a cool environment (29 +/- 0.5 degrees C) V(O2) during REM sleep was 7.77, and during NREM sleep it was 6.58 ml. kg(-1). min(-1), (P < 0.001). Thus even the maximum difference found in a neutral thermal environment of 6.6% was significantly increased to 14.9% (P < 0.01) with mild thermal stress.6. No consistent changes in V(O2) with time were found in either REM or NREM sleep in twelve infants studied in a cool environment, in contrast to the findings in thermal neutrality
Read moreFinger Twitches are More Frequent in REM Sleep Than in Non-REM Sleep.
IntroductionAbnormal rapid eye movement (REM) sleep is often symptomatic of chronic disorders, however polysomnography, the gold standard method to measure REM sleep, is expensive and often impractical. Attempts to develop cost-effective ambulatory systems to measure REM sleep have had limited success. As elevated twitching is often observed during REM sleep in some distal muscles, the aim of this study was to assess the potential for a finger-mounted device to measure finger twitches, and thereby differentiate periods of REM and non-REM (NREM) sleep.MethodsOne night of sleep data was collected by polysomnography from each of 18 (3f, 15m) healthy adults aged 23.2 ± 3.3 (mean ± SD) years. Finger movement was detected using a piezo-electric limb sensor taped to the index finger of each participant. Finger twitch densities were calculated for each stage of sleep.ResultsFinger twitch density was greater in REM than in NREM sleep (p < 0.001). Each sleep stage had a unique finger twitch density, except for REM and stage N1 sleep which were similar. Finger twitch density was greater in late REM than in early REM sleep (p = 0.005), and there was a time–state interaction: the difference between finger twitch densities in REM and NREM sleep was greater in late sleep than in early sleep (p = 0.007).ConclusionFinger twitching is more frequent in REM sleep than in NREM sleep and becomes more distinguishable as sleep progresses. Finger twitches appear to be too infrequent to make definitive 30-second epoch determinations of sleep stage. However, an algorithm informed by measures of finger twitch density has the potential to detect periods of REM sleep and provide estimates of total REM sleep time and percentage.
Read moreChapter 2 NREM–REM sleep
Chapter 2 NREM–REM sleep
A probabilistic model for the ultradian timing of REM sleep in mice
A salient feature of mammalian sleep is the alternation between rapid eye movement (REM) and non-REM (NREM) sleep. However, how these two sleep stages influence each other and thereby regulate the timing of REM sleep episodes is still largely unresolved. Here, we developed a statistical model that specifies the relationship between REM and subsequent NREM sleep to quantify how REM sleep affects the following NREM sleep duration and its electrophysiological features in mice. We show that a lognormal mixture model well describes how the preceding REM sleep duration influences the amount of NREM sleep till the next REM sleep episode. The model supports the existence of two different types of sleep cycles: Short cycles form closely interspaced sequences of REM sleep episodes, whereas during long cycles, REM sleep is first followed by an interval of NREM sleep during which transitions to REM sleep are extremely unlikely. This refractory period is characterized by low power in the theta and sigma range of the electroencephalogram (EEG), low spindle rate and frequent microarousals, and its duration proportionally increases with the preceding REM sleep duration. Using our model, we estimated the propensity for REM sleep at the transition from NREM to REM sleep and found that entering REM sleep with higher propensity resulted in longer REM sleep episodes with reduced EEG power. Compared with the light phase, the buildup of REM sleep propensity was slower during the dark phase. Our data-driven modeling approach uncovered basic principles underlying the timing and duration of REM sleep episodes in mice and provides a flexible framework to describe the ultradian regulation of REM sleep in health and disease.
Read moreA probabilistic model for the ultradian timing of REM sleep in mice.
A salient feature of mammalian sleep is the alternation between rapid eye movement (REM) and non-REM (NREM) sleep. However, how these two sleep stages influence each other and thereby regulate the timing of REM sleep episodes is still largely unresolved. Here, we developed a statistical model that specifies the relationship between REM and subsequent NREM sleep to quantify how REM sleep affects the following NREM sleep duration and its electrophysiological features in mice. We show that a lognormal mixture model well describes how the preceding REM sleep duration influences the amount of NREM sleep till the next REM sleep episode. The model supports the existence of two different types of sleep cycles: Short cycles form closely interspaced sequences of REM sleep episodes, whereas during long cycles, REM sleep is first followed by an interval of NREM sleep during which transitions to REM sleep are extremely unlikely. This refractory period is characterized by low power in the theta and sigma range of the electroencephalogram (EEG), low spindle rate and frequent microarousals, and its duration proportionally increases with the preceding REM sleep duration. Using our model, we estimated the propensity for REM sleep at the transition from NREM to REM sleep and found that entering REM sleep with higher propensity resulted in longer REM sleep episodes with reduced EEG power. Compared with the light phase, the buildup of REM sleep propensity was slower during the dark phase. Our data-driven modeling approach uncovered basic principles underlying the timing and duration of REM sleep episodes in mice and provides a flexible framework to describe the ultradian regulation of REM sleep in health and disease.
Read moreIschemic stroke selectively inhibits REM sleep of rats
Ischemic stroke selectively inhibits REM sleep of rats