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L M Mukhametov

Publications and source records attributed to L M Mukhametov.

At least 19 recordsLinked to original sources

Relationship between sleep and eye state in Cetaceans and Pinnipeds.

We recorded EEG from both hemispheres and documented the state of the two eyes in two species of Cetaceans (one beluga and one bottlenose dolphin) and one species of Pinnipeds (two northern fur seals). In the dolphin and beluga we found that episodes of unihemispheric slow wave sleep (USWS) were associated with asymmetry in eye state. During USWS and asymmetrical SWS the eye contralateral to the sleeping hemisphere was mostly closed or in an intermediate state while the eye contralateral to the waking hemisphere was more often open or in an intermediate state. Bilateral eye opening indicated waking in about 80% cases and unilateral eye closure indicated USWS with an accuracy of about 75%. Bilateral eye closure was rare (< 2% of the observation time) and was not necessarily associated with high amplitude SWS. In fur seals, episodes of one eye briefly opening usually occurred in the beginning of sleep episodes and lasted several minutes. Those episodes were frequently associated with lower amplitude EEG slow waves in the contralateral brain hemisphere. During most of their sleep on land, fur seals had both eyes tightly closed. No EEG asymmetry was recorded at this time. Although eye state and EEG stage are correlated in the bottlenose dolphin, beluga and fur seals, short episodes of EEG synchrony (less then 1 min) occur contralateral to an open eye and waking (a more activated EEG) activity can be present contralateral to a closed eye. The available data suggest that two functions of USWS/EEG asymmetry during SWS in Cetaceans and fur seals are multisensory control of the environment and maintenance of motion and postures of sleep. The adaptive advantages of USWS throughout the evolution of Cetaceans and Pinnipeds from terrestrial mammals to present forms could include 1) the avoidance of predators and maintenance of contact with other animals of the same species; 2) continuance of regular breathing; 3) and effective thermoregulation in the water environment.

Adaptation, Physiological↗

Muscle jerks during behavioral sleep in a beluga whale (Delphinapterus leucas L.).

We conducted video recording of the behavior of one captive adult male beluga (or white) whale over eight nights aiming to quantify muscle jerks and to evaluate their relationship to the sleep-waking cycle. Presumably, the whale was asleep during a significant portion of the time it spent lying on the bottom of the pool. Individual sleep episodes lasted between 20 and 492 s and on average occupied 66.7+/-2.6% of the nighttime (n=8). Muscle jerks were quantified in the last three nights, during which an average of 144+/-24 jerks were documented per night. Forty-six percent of all jerks occurred within 10 s of each other. Series of jerks lasted 2-21 s (on average 4.8+/-0.5 s, n=97) and in total occupied 0.3-0.7% of the rest time (0.2-0.5% of total nighttime). Jerks occurred more frequently at the end of rest episodes. A significant portion of rest episodes with jerks (62%) followed each other. These series of episodes with jerks alternated with periods when jerks were not recorded over 8-37 min. We conclude that some jerks meet the behavioral criteria of paradoxical [or rapid eye movement (REM)] sleep (PS). On the other hand, definitive conclusions about the presence and duration of this sleep stage in cetaceans cannot be reached without further combined electropolygraphic studies and visual observations.

Animals↗

Unihemispheric slow wave sleep and the state of the eyes in a white whale.

We recorded electroencephalogram (EEG) and simultaneously documented the state of both eyelids during sleep and wakefulness in a sub-adult male white whale over a 4-day-period. We showed that the white whale was the fifth species of Cetaceans, which exhibits unihemispheric slow wave sleep. We found that the eye contralateral to the sleeping hemisphere in this whale was usually closed (right eye, 52% of the total sleep time in the contralateral hemisphere; left eye, 40%) or in an intermediate state (31 and 46%, respectively) while the ipsilateral eye was typically open (89 and 80%). Episodes of bilateral eye closure in this whale occupied less than 2% of the observation time and were usually recorded during waking (49% of the bilateral eye closure time) or low amplitude sleep (48%) and rarely in high amplitude sleep (3%). In spite of the evident overall relationship between the sleeping hemisphere and eye state, EEG and eye position in this whale could be independent over short time periods (less than 1 min). Therefore, eye state alone may not accurately reflect sleep state in Cetaceans. Our data support the idea that unihemispheric sleep allows Cetaceans to monitor the environment.

Animals↗

Rest and activity states in a gray whale.

The behaviour of a female gray whale (Eschrichtius robustus) that had been rescued 14 months previously was recorded continuously on a video-recorder for 9 days at 'Sea World' in San Diego. On average, during the first six recording days, active wakefulness accounted for 37.9 +/- 1.7% of each 24 h; transitional stage for 17.4 +/- 1.4% and rest for 41.2 +/- 1.7%. In the rest stage the whale was lying on the bottom of the pool (13.2 +/- 1.7%) or hanging on the surface (28. 0 +/- 1.7%). During the rest stage, it was immobile most of the time and moved only for respiration. In the rest stage both eyes could be open, one eye could be open while the other was closed or, more rarely, both eyes could be closed. Characteristic jerks of the head, neck and sometimes of the whole body were observed in the whale during the rest stage. Most jerks were single and only 10% of all jerks were serial (occurring within 10 s of a prior jerk). Eyelid movements accompanied 40% of jerks. In two episodes, intense jerks followed each other continuously for 3 and 4 s and were accompanied by eyelid movements. These jerks resembled the twitches characteristic of paradoxical sleep in terrestrial mammals. During these episodes the whale was falling slowly onto its side and subsequently started to swim in the pool.

Animals↗

Sleep in an Amazonian manatee, Trichechus inunguis.

For the first time, sleep was studied in a representative of the order of Sirenia. Slow wave sleep occupied 27%, and paradoxical sleep 1% of the total recording time in the Amazonian manatee. Trichechus inunguis. The circadian rhythmicity of sleep was pronounced. During the sleep period, the manatee woke up for a short time for each respiratory act. Interhemispheric asynchrony of the electrocortical slow wave activity was found.

Animals↗

[Quantitative characteristics of the electrocorticographic sleep stages in bottle-nosed dolphins].

Quantitative analysis of the ECoG stages in four bottle-nosed dolphins has demonstrated that unihemispheric slow-wave sleep is the dominant type of their natural sleep. All the variants of the bilateral and unilateral ECoG synchronization comprise 33.4% of the total recording time, with unilateral slow-wave sleep accounting for 28.8%. A single brain hemisphere is in a state of ECoG synchronization for 19% of the total recording time. The maximal amount of sleep is registered during a night and the second half of the day. Unihemispheric sleep episodes tend to appear alternatively in both hemispheres.

Animals↗

[Electroencephalographic study of sleep in Sea of Azov porpoises].

ECoG of both hemispheres, EMG of neck muscles, ECG and respiration rate were recorded in 3 free swimming Black Sea porpoises. The sleep characteristics in the porpoises were similar to those in the bottlenose dolphins which have been investigated earlier. Unihemispheric slow sleep was the main type of the porpoise sleep. Paradoxical sleep has not yet been found in them. All ther types of the porpoise sleep occurred during swimming and therefore could not serve to spare energy and to immobilize the animal. The experiments with nembutal and diazepam administration suggest that the functional necessity of the unihemispheric sleep results from the impossibility of maintaining dolphins' respiration during bilateral delta-sleep.

Animals↗

[Neuronal activity of the cat visual cortex during the sleep--wakefulness cycle].

The changes in background neuronal activity of the visual cortex during the sleep-waking cycle were studied in the dark adapted chronic cats. Neither pattern nor frequency of discharges of the investigated cells were significantly different in waking state and paradoxical sleep. The interspike interval histograms and autocorrelograms were used to evaluate the changes in the patterns of cell discharges. Slow sleep differs noticeably from the wakening state and paradoxical sleep due to the burst-pause pattern appearance in cell discharges.

Animals↗

Spontaneous activity of neurones of nucleus reticularis thalami in freely moving cats.

1. Fifty-four neurones of the caudal part of the nucleus reticularis thalami (nuc. ret.) were recorded during different phases of sleep and wakefulness in unanaesthetized freely moving cats.2. During wakefulness the activity of the neurones was characterized by a continuous, well-spaced discharge. The mean firing rate was 35.58 +/- 15.06 spikes/sec (average +/- S.D.).3. During sleep with synchronized e.e.g. (S-sleep) the neurones fired in high frequency bursts with long pauses in between. Each burst was formed of 10-15 spikes. Often the bursts were followed by prolonged discharges formed of spikes well spaced one from the other. Bursts followed by prolonged activity were more commonly observed at the beginning of S-sleep and during the S-sleep periods preceding sleep with desynchronized e.e.g., whereas bursts immediately followed by silence were more frequent in the S-sleep periods with e.e.g. delta waves. The long periods of silence between the bursts usually lasted over 200 msec and values greater than 1 sec were frequently found. The mean firing rate of neurones during S-sleep was 19.22 +/- 10.50 spikes/sec.4. During sleep with desynchronized e.e.g. (D-sleep) the activity of the neurones was, as during wakefulness, characterized by a continuous, well spaced, unclustered discharge. The mean firing rate was 40.00 +/- 18.74 spikes/sec. During the rapid eye movements of this phase most units increased the frequency of their discharge, which, nevertheless, maintained the unclustered feature proper to the desynchronized phase of sleep.5. Interspike interval distribution was similar during wakefulness and sleep with desynchronized e.e.g., whereas that for sleep with synchronized e.e.g. was markedly different from those for both the other stages.6. The implications of the striking similarity between the activity of reticularis neurones during wakefulness and sleep with desynchronized e.e.g. are discussed.

Action Potentials↗