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H P Roffwarg

Publications and source records attributed to H P Roffwarg.

At least 19 recordsLinked to original sources

Rapid eye movement sleep deprivation modifies expression of long-term potentiation in visual cortex of immature rats.

During rapid eye movement (REM) sleep, activity of non-retinal origin is propagated into central visual-system pathways in a manner similar, in pattern and intensity, to central visual-system activity that is exogenously generated in waking. It has been hypothesized that REM sleep, which is more abundantly represented early in life than later, functions to provide adjunct 'afferent' input for shaping synaptic connectivity during brain maturation. Here we present data that support this proposal. Recent studies have described a developmentally regulated form of in vitro long-term potentiation (LTP) in the visual cortex that is experience- and age-dependent. In immature rats, suppression of retinal activation of the visual system by removal of visual experience (dark rearing) extends the age when the developmentally regulated form of LTP can be produced. This study tests whether suppression of REM-state activation of the visual system also lengthens the developmental period in which this specific form of LTP can be elicited. Young rats were deprived of REM sleep by the multiple-small-platforms-over-water method during the typically latest week for induction of such LTP in slices of visual cortex. After this week, we could still induce LTP in slices from nearly all the REM-sleep-deprived rats (8/9) but not from age-matched rats that had not lost REM sleep (0/5). The control rats had been housed on large platforms that allow the animals to obtain REM sleep. Only body weights and the concentration of thyrotrophin-releasing hormone in the hypothalamus distinguished home-caged, normal-sleeping controls from both groups of platform animals. On all measures, stress levels were not dissimilar in the two platforms groups. After 7 days of behavioral suppression of REM sleep in immature rats, and consequent reduction of the intense, extra-retinal activity endogenously generated during this sleep state, we found that the period was extended in which developmentally regulated synaptic plasticity (LTP) could be elicited in slices of visual neocortex. These studies support the role of REM sleep and its associated neuronal activity in brain maturation.

Aging↗

The effects of 1 week of REM sleep deprivation on parvalbumin and calbindin immunoreactive neurons in central visual pathways of kittens.

Many maturational processes in the brain are at high levels prenatally as well as neonatally before eye-opening, when extrinsic sensory stimulation is limited. During these periods of rapid brain development, a large percentage of time is spent in rapid eye movement (REM) sleep, a state characterized by high levels of endogenously produced brain activity. The abundance of REM sleep in early life and its ensuing decline to lower levels in adulthood strongly suggest that REM sleep constitutes an integral part of the activity-dependent processes that enable normal physiological and structural brain development. We examined the effect of REM sleep deprivation during the critical period for visual development on the development of two calcium-binding proteins that are associated with developmental synaptic plasticity and are found in the lateral geniculate nucleus (LGN) and visual cortex. In this study, REM sleep deprivation was carried out utilizing a computer-controlled, cage-shaking apparatus that successfully suppressed REM sleep. Body weight data suggested that this method of REM sleep deprivation produced less stress than the classical multiple-platform-over-water method. In REM sleep-deprived animals with normal binocular vision, the number of parvalbumin-immunoreactive (PV) neurons in LGN was found to be lower compared with control animals but was not affected in visual cortex. The pattern of calbindin-immunoreactivity (CaB) was unchanged at either site after REM sleep deprivation. Parvalbumin-immunoreactivity develops later than calbindin-immunoreactivity in the LGN, and the REM sleep deprivation that we applied from postnatal day 42-49 delayed this essential step in the development of the kitten's visual system. These data suggest that in early postnatal brain development, REM sleep facilitates the usual time course of the expression of PV-immunoreactivity in LGN neurons.

Animals↗

Ponto-geniculo-occipital-wave suppression amplifies lateral geniculate nucleus cell-size changes in monocularly deprived kittens.

We have previously shown that during the post-natal critical period of development of the cat visual system, 1 week of instrumental rapid eye movement (REM) sleep deprivation (IRSD) during 2 weeks of monocular deprivation (MD) results in significant amplification of the effects of solely the 2-week MD on cell-size in the binocular segment of the lateral geniculate nucleus (LGN) [36,40]. In this study, we examined whether elimination of ponto-geniculo-occipital (PGO)-wave phasic activity in the LGN during REM sleep (REMS), rather than suppression of all REMS state-related activity, would similarly yield enhanced plasticity effects on cell-size in LGN. PGO-activity was eliminated in LGN by bilateral pontomesencephalic lesions [8,32]. This method of removing phasic activation at the level of the LGN preserved sleep and wake proportions as well as the tonic activities (low voltage, fast frequency ECoG and low amplitude EMG) that characterize REM sleep. The lesions were performed in kittens on post-natal day 42, at the end of the first week of the 2-week period of MD, the same age when IRSD was started in the earlier study. LGN interlaminar cell-size disparity increased in the PGO-wave-suppressed animals as it had in behaviorally REM sleep-deprived animals. Smaller A1/A-interlaminar ratios reflect the increased disparity effect in both the REM sleep- and PGO-suppressed groups compared to animals subjected to MD-alone. With IRSD, the effect was achieved because the occluded eye-related, LGN A1-lamina cells tended to be smaller relative to their size after MD-alone, whereas after PGO-suppressing lesions, the A1-lamina cells retained their size and the non-occluded eye-related, A-lamina cells tended to be larger than after MD-alone. Despite this difference, for which several possible explanations are offered, these A1/A-interlaminar ratio data indicate that in conjunction either with suppression of the whole of the REMS state or selective removal of REM sleep phasic activity at the LGN, altered visual input evokes more LGN cell plasticity during the developmental period than it would otherwise. These data further support involvement of the REM sleep state in reducing susceptibility to plasticity changes and undesirable variability in the course of normative CNS growth and maturation.

Animals↗

Neuronal activity in the lateral geniculate nucleus associated with ponto-geniculo-occipital waves lacks lamina specificity.

Ponto-geniculo-occipital (PGO) waves are spontaneously occurring field potentials recorded in the dorsal lateral geniculate nucleus (LGN) just prior to and during rapid eye movement (REM) sleep. Facilitated discharge rates of LGN neurons are associated with PGO waves. In kittens during the critical period of visual system development, both visual experience and PGO waves appear capable of influencing the course of development through activity-dependent mechanisms. Retinal innervation of LGN segregates into eye-specific laminae and is critical to supporting the role of binocular visual experience in development. We sought to determine whether neuronal activity associated with PGO waves also exhibits lamina specificity. PGO wave-related discharges were examined in LGN neurons identified as to lamina location in adult cats administered urethane anesthesia and the reserpine-like compound, RO4-1284. Spontaneous activity of LGN neurons was related to the occurrence of PGO-like waves in all cells studied. No factors could be found that differentiated lamina location and PGO wave-related discharges. We conclude that the PGO wave influence on neuronal activity in the visual system is fundamentally different from that derived from visual experience. The implications of this difference for the role of the two sources of activation in the control of neural activity in development are discussed.

2H-Benzo(a)quinolizin-2-ol, 2-Ethyl-1,3,4,6,7,11b-↗

Effects of fluoxetine on the polysomnogram in outpatients with major depression.

This study investigated the effects of open-label fluoxetine (20 mg/d) on the polysomnogram (PSG) in depressed outpatients (n = 58) who were treated for 5 weeks, after which dose escalation was available (< or = 40 mg/d), based on clinical judgment. Thirty-six patients completed all 10 weeks of acute phase treatment and responded (HRS-D < or = 10). PSG assessments were conducted and subjective sleep evaluations were gathered at baseline and at weeks 1, 5, and 10. Of the 36 subjects who completed the acute phase, 17 were reevaluated after 30 weeks on continuation phase treatment and 13 after approximately 7 weeks (range 6-8 weeks) following medication discontinuation. Acute phase treatment in responders was associated with significant increases in REM latency, Stage 1 sleep, and REM density, as well as significant decreases in sleep efficiency, total REM sleep, and Stage 2 sleep. Conversely, subjective measures of sleep indicated a steady improvement during acute phase treatment. After fluoxetine was discontinued, total REM sleep and sleep efficiency were found to be increased as compared to baseline.

Adolescent↗

REM sleep deprivation in monocularly occluded kittens reduces the size of cells in LGN monocular segment.

STUDY OBJECTIVES: In this study, we test the hypothesis that when REM-state activation (which impinges upon all lateral geniculate nucleus laminae irrespective of stimulating eye) is deprived, the monocular segment (MS) that is cut off from visual input and also deprived of REM-state activation will exhibit smaller cells, owing to the loss of extrinsic as well as intrinsic activation. DESIGN: We carried out a study comparing soma sizes in the MSs of kittens subjected to monocular deprivation (MD) + REM deprivation (RD) to two age-matched nonRD groups, MD ONLYs and MD MOMS (MD kittens living in their home cages). MEASUREMENTS AND RESULTS: Perikaryal outlines of 100 cells in each of the bilateral MSs were measured. As predicted, mean cell size in the MS connected to the patched eye of MD + RD kittens, but in neither of the control groups, was significantly smaller than in the MS afferented by the nonpatched eye. One-way ANOVAs comparing MS cell-size means from the same sides across groups were also significant, but the two MSs showed different results on post hoc tests. The ordering of MS cell-size means correlated significantly with a measure that aggregates the sources of activation reaching a particular MS and their durations. CONCLUSIONS: These results reveal that removal of REM-state activation during CNS development amplifies the plasticity processes generated when normal visual afferentation to central visual areas is interrupted. Our findings in the MS of the LGN indicate that during the usual operation of REM sleep, central visual-sensory sites receive intrinsic activation that, in the visual system, is additive and complementary to the stimulation obtained from extrinsic sources. In the course of early development, normative symmetrical activation of central visual areas during REM sleep may counterbalance plasticity changes caused either by absent or aberrant sensory stimulation.

Animals↗

Controlled comparison of electrophysiological sleep in families of probands with unipolar depression.

OBJECTIVE: This study presents polysomnographic data and psychiatric history for parents and siblings of probands with unipolar depression and short REM latency, probands with unipolar depression and normal REM latency, and normal comparison probands. METHOD: Parents and adult siblings (N = 252) of probands (N = 64) were evaluated for lifetime history of psychiatric disorders and were studied in the sleep laboratory for 3 nights. RESULTS: REM latency predicted lifetime history of major depression. Short REM latency was also associated with slow wave sleep deficits. Rate of short REM latency in relatives of depressed probands with short REM latency quadrupled the rate in relatives of both depressed probands with normal REM latency and normal probands. Lifetime risk of depression was almost twice as high in relatives of depressed probands with short REM latency as in relatives of depressed probands with normal REM latency. CONCLUSIONS: Short REM latency and slow wave sleep deficits are familial. Short REM latency is associated with increased risk of major depression beyond the familial risk associated with a depressed proband. Polysomnographic abnormalities also occurred in unaffected relatives. Although the data can be considered only suggestive, these findings indicate that polysomnographic abnormalities may precede the clinical expression of depression and may be useful in identifying those at highest risk for the illness.

Adult↗

Dexamethasone response, thyrotropin-releasing hormone stimulation, rapid eye movement latency, and subtypes of depression.

Most prior studies of mood disorders have used a single laboratory test to assist in differential diagnosis, prediction of treatment response, and prediction of relapse. This study compared three laboratory measures in a combined in- and outpatient sample of depressed patients. Dexamethasone suppression test (DST) nonsuppression occurred in 46% of patients with endogenous major depression, in 15% with nonendogenous major depression, and in 56% with bipolar, depressed phase disorder. A blunted thyrotropin-releasing hormone stimulation test (TRH-ST) occurred in 25% of patients with endogenous, 10% with nonendogenous, and 44% with bipolar, depressed phase disorder. Reduced REM latency was found in 65% of endogenous major depressions, in 34% of nonendogenous major depressions, and in 53% of bipolar, depressed phase disorders. Fifty-one percent of those with reduced REM latency also evidenced DST nonsuppression. When the endogenous major depression and bipolar, depressed phase groups were combined, 28% had no laboratory abnormality, whereas 8% evidenced all three. These findings suggest that 1) endogenous/nonendogenous unipolar groups are distinguished by all three laboratory tests; 2) most patients with a blunted TRH-ST also evidence DST nonsuppression; and 3) one half of patients with reduced REM latency evidence DST nonsuppression. Sensitivity is greatest and specificity is lowest for REM latency, followed by the DST and then the TRH-ST.

Adult↗

Rapid eye movement sleep deprivation in kittens amplifies LGN cell-size disparity induced by monocular deprivation.

The abundance of rapid eye movement (REM) sleep in the neonatal mammal and its subsequent decline in the course of development, as well as the dramatic and widespread enhancement of CNS activity during REM sleep, led us to propose that this state plays a functional role in the normative physiological and structural maturation of the brain [54]. When, after 1 week of monocular deprivation (MD), a second week of MD was coupled with behavioral deprivation of REM sleep, the structural alteration in the visual system provoked by MD alone (interlaminar relay cell-size disparity in the lateral geniculate nucleus (LGN) was amplified. With the addition of REM deprivation during MD, the LGN cells connected to the surgically patched eye, which are smaller than normal after MD, became even smaller, whereas the LGN cells receiving input from the seeing eye, which display compensatory hypertrophy after MD, grew even larger. We believe that the interlaminar disparity effect widened because during REM deprivation, the already vision-compromised LGN cells associated with the patched eye also lose the ascending brainstem activation reaching them during the REM state. Loss of the two main sources of 'afference' by these LGN cells permits their seeing-eye LGN counterparts to gain even greater advantage in the competition for synaptic connections in cortex, which is reflected in the relative soma sizes of the LGN relay cells. It is likely that the relatively abundant REM state in early maturation provides symmetric stimulation to all LGN relay cells, irrespective of eye of innervation. The symmetric activation propagated from brainstem to LGN acts to 'buffer' abnormal, asymmetric visual input and, thereby diminishes the extreme, asymmetric structural alteration that results from MD in the absence of REM sleep. We conclude that REM sleep-generated CNS discharge in development has the effect of 'protecting' the CNS against excessive plasticity changes. This is consistent with the possibility that REM sleep plays a role in the genetically programmed processes that direct normative brain development.

Animals↗

Depression spectrum disease with and without depression in first-degree relatives.

Family history was assessed in 211 outpatients with unipolar major depression and diagnoses were rendered according to Winokur et al. (Winokur et al. (1978) J. Nerv. Ment. Dis. 166, 764-768) family history typology. The subclassification of Depression Spectrum Disease with Alcoholism and Depression (DSDA + D) was applied to those patients reporting at least one first-degree relative suffering from alcoholism and another first-degree relative suffering from depression (n = 103), while Depression Spectrum Disease with Alcoholism (DSDA) was applied to those patients with at least one first-degree relative suffering from alcoholism, but none suffering from depression (n = 108). These two groups were compared on demographic, clinical and biological characteristics. They were also compared with 162 patients who reported the presence of depression and absence of alcoholism in first-degree relatives, designated as Familial Pure Depressive Disease (FPDD) by the Winokur et al. (1978) classification. Results revealed that the DSDA + D group was younger, had an earlier age at onset of depression and experienced more episodes of depression than did the DSDA group. No differences were found between the two groups on biological measures. The FPDD group was more similar to the DSDA + D group than the DSDA group in terms of age at onset and number of depressives episodes. However, the FPDD group had a longer length of illness than either of the DSD groups. These data suggest that the DSD group should be more narrowly defined (excluding those with a positive family history of depression) in future clinical research studies.

Adult↗

Sleep EEG features of adolescents with major depression.

A substantial body of research in adults has established that certain sleep polysomnographic abnormalities are commonly found in depressed patients, including sleep continuity disturbances, reduced slow-wave sleep, shortened rapid eye movement (REM) latency and increased REM density. To date the findings in depressed adolescents are equivocal. Three consecutive nights of polysomnographic recordings were obtained in 31 hospitalized depressed adolescents and 17 age-matched normal controls. The depressed adolescents had a shorter REM latency, shorter sleep latency, more REM sleep, and less stage 3 nonREM (NREM) sleep. There was a trend for melancholic and suicidal patients to have a shorter REM latency.

Adolescent↗

Latency to rapid eye movement sleep as a predictor of treatment response to fluoxetine and placebo in nonpsychotic depressed outpatients.

Fluoxetine and placebo were compared in 89 outpatients with major depression with (n = 45) or without (n = 44) a reduced or shortened rapid eye movement latency (SREML) (< or = 65 minutes) to determine whether rapid eye movement latency (REML) predicted placebo and/or antidepressant response. Men and women were stratified based on polysomnographic recordings and then randomly assigned to receive double-blind fluoxetine (20 mg/day) or placebo for 8 weeks after a 2-week, single-blind, placebo lead-in period. Fluoxetine-treated patients demonstrated a significantly greater reduction in the Hamilton Rating Scale for Depression total score and a significantly greater response rate than placebo-treated patients in both the SREML and the combined strata. Treatment differences in the non-SREML stratum were not statistically significant. Results supported REML as a predictor of placebo nonresponse but did not predict a differential fluoxetine response in patients with SREML compared with patients without SREML.

Adolescent↗

The effects of fluoxetine on the polysomnogram of depressed outpatients: a pilot study.

The effects of fluoxetine (FLU) and its active metabolite, norfluoxetine (NFLU), on the polysomnogram (PSG) of nine depressed outpatients (eight with major depression; one with bipolar II, depressed phase disorder) were investigated by contrasting PSG values prior to treatment and during administration of FLU. The PSG changes were correlated with daily dose, cumulative dosage, single serum concentrations, and the total area under the serum concentration curve (AUC) of both FLU and NFLU. Fluoxetine clearly increased both stage 1 sleep time and rapid-eye-movement (REM) latency and decreased both percent REM and REM density. With a few exceptions, the cumulative dosage of FLU and the AUC of FLU and NFLU were better predictors of the changes in awake and movement time in the PSG than single-sample concentrations of FLU and NFLU taken at the time of PSG assessment.

Adult↗

The effects of nefazodone on sleep architecture in depression.

A polysomnographic study was conducted on 10 outpatients with major depression at baseline and during 4 to 8 weeks of open-trial treatment with nefazodone (400 to 600 mg/day). All 10 patients were treatment responders as evidenced by at least 50% reduction from baseline scores on the Hamilton Depression Rating Scale. Nefazodone was associated with significantly decreased wake and movement time and increased minutes and percentage of stage 2 sleep at the expense of light stage 1 sleep. Nefazodone did not increase rapid-eye-movement (REM) latency and it did not suppress REM sleep. In fact, a trend toward increased REM in the second REM period was observed, although decreased REM in the third REM period was also noted. In summary, nefazodone, an effective antidepressant, decreases arousals and wakefulness during sleep and reduces light non-REM sleep. This agent does not appear to suppress REM sleep or prolong REM latency in patients who respond to treatment.

Adult↗

Spontaneous activity in the thalamic reticular nucleus during the sleep/wake cycle of the freely-moving rat.

Neurons of the somatosensory thalamic reticular nucleus (TRN) were studied by extracellular recordings through the sleep/wake cycle in the unanesthetized, freely-moving rat. All electrophysiologically-identified TRN neurons expressed rhythmic patterns of discharge that altered with shifts in sleep/wake state. During slow wave (SW) sleep, neurons displayed spike-burst discharges in long trains followed by pauses. high-frequency oscillations in auto-correlograms in the spindle-frequency range (approximately 10 Hz) reflected the rhythm of interburst intervals within the trains whereas low-frequency oscillations (0.3-0.2 Hz) displayed the rhythm of intertrain intervals. During rapid eye movement (REM) sleep, a more continuous pattern of spike-burst discharges was prominent, resulting in absence of a detectable, low-frequency rhythm but persistence of spindle-frequency firing. At the transitions between SW and REM sleep, cell discharge was more tonic than during either sleep state and lacked a dominant rhythm. During the wake (AW) state, neurons fired in a single-spike mode that also lacked rhythmicity. Unlike their pattern of discharge, TRN neurons' mean rate of discharge did not distinguish sleep/wake state. The mean discharge rates were: SW, 18.4 +/- 1.3; REM, 17.4 +/- 1.2; AW, 22.3 +/- 2.1 (Hz +/- S.E.M.). Mean discharge rate during transitions from SW to REM sleep (28.6 +/- 2.1) was significantly higher, however, than during any sleep/wake state. Compelling evidence was lacking for segregation of TRN neurons into discrete populations according to absolute discharge rate. Neurons recorded simultaneously from the same electrode discharged synchronous trains of spike-bursts and pauses during SW sleep. This phenomenon may be related to generation of EEG slow waves.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Prospective assessment of electroencephalographic sleep in remitted major depression.

We studied 29 patients with major depression before treatment and then followed these patients prospectively with monthly electroencephalographic (EEG) sleep assessments after successful treatment. Most EEG sleep measures demonstrated no change from the episode throughout a prolonged period of clinical remission. When there was evidence of a change in EEG sleep measures, the effect was modest and due to only a small subset of patients. These findings contribute to the accumulating evidence that selected EEG sleep measures appear to be trait-like and may be useful in identifying individuals at risk for major depression.

Adult↗

Digital period analysis of EEG in depression: periodicity, coherence, and interhemispheric relationships during sleep.

1. Interhemispheric EEG differences were compared between 12 symptomatic depressed outpatients, 12 asymptomatic patients and 12 normal controls during two consecutive nights in the Sleep Study Unit. 2. EEG was quantified using digital period analysis (DPA), a time-domain analysis of successive polarity changes (zero-cross) and instances of zero slope (first derivative), yielding percent-time in each frequency band. 3. The degree of hemispheric asymmetry (L-R) was computed for delta, beta and theta percentages from REM, Stage 2 and Slow-Wave (SW) sleep. 4. Normals showed small asymmetries throughout sleep with largest differences in SW, with no consistent relationship between right and left activity and sleep stage. 5. Both depressed groups showed largest asymmetries in REM sleep, with significantly more beta, theta and delta in the right hemisphere consistently. None of the 24 depressed patients showed greater left hemisphere activity throughout sleep.

Adult↗

Cholinergic responsiveness of neurons in the ventroposterior thalamus of the anesthetized rat.

Acetylcholine has been implicated as an important neurotransmitter in the mechanisms of thalamic activation. Cholinergic mechanisms are thought to directly underlie the high level of excitability observed in thalamic relay neurons during waking and rapid eye movement sleep. We sought to determine if the cholinergic responsiveness of neurons in the ventroposterior nuclei of the thalamus in rat is consistent with this view. Neurons in the chloral hydrate-anesthetized rat were studied with extracellular recording and microiontophoretic application of cholinergic agents. In most cases (63% of 63 cells), the ejection of the agonist, carbachol, had no observable effect on spontaneous activity. Facilitation (25%), inhibition (8%) and inhibition followed by facilitation (3%) were also observed. Carbachol ejections that by themselves were ineffective in altering spontaneous activity proved capable, in 93% of 28 cells, of antagonizing the uniformly facilitatory responses produced by glutamate ejection. The putative M1-selective, cholinergic agonist, McN-A-343, was also ineffective alone in altering spontaneous activity in the majority of cases (74% of 27 cells) and produced only inhibitory responses in the remaining seven neurons studied. Interacting applications of McN-A-343 and glutamate resulted, in all cases, in antagonism of glutamate facilitation (N = 12). The various responses to applied cholinergic agonists were all capable of being antagonized by muscarinic receptor-blocking agents. Both the high proportion of inhibitory responses and the antagonism of glutamate facilitatory responses suggest that ventroposterior neurons in the rat differ from other thalamocortical relay neurons in the rat and cat with regard to cholinergic responsiveness. Additionally, the lack of predominantly facilitatory responding renders it unlikely that cholinergic mechanisms directly underlie increases in excitability of ventroposterior neurons observed during waking and rapid eye movement sleep.

(4-(m-Chlorophenylcarbamoyloxy)-2-butynyl)trimethy↗