Abstract
Spontaneous firing of midbrain reticular formation (MRF) neurons was recorded extracellularly in chronically implanted, behaving cats during steady and transitional states of the sleep-waking cycle. Physiological identification of receiver and/or projection MRF neurons was achieved through orthodromically elicited discharges. Discharge rates of MRF neurons were more than double in waking (W) and active sleep (D) without phasic motor events, as compared to synchronized sleep (S). During behavioral states associated with EEG activation, the increased firing was essentially due to cells exhibiting high discharge rates, located at relatively ventral levels of the midbrain core. MRF neurons with identified rostrally projecting axons were more active during W and D states; their discharge rates were significantly higher than those of caudally projecting cells. The discharge patterns of MRF neurons increasing their firing rates from S to W and D were of the tonic type. First-order analyses showed a negligible proportion of both very short and long interspike intervals in all states, large interval density around the mode especially in W and D, and the smallest variation coefficients in W. Rhythmic firing with a period near the modal interval was detected during W by autocorrelations. The increase in firing rate of MRF neurons from S to W or D took place before overt EEG desynchronization and behavioral manifestations that define stable W or D states. In our sample a statistically significant increase in discharge rate was found about 15 s before the end of S sleep epochs that developed into awakening. The differences between discharge features of MRF neurons during waking and sleep states and those of neurons in other brainstem reticular fields are emphasized. Taken together, these data support, at a cellular level, Moruzzi and Magoun's concept of a rostral reticular substrate that gives rise to impulses leading to tonic activation of the thalamocortical systems.
MeSH Terms
Animals
Arousal/physiology
Cats
Cortical Synchronization
Electroencephalography
Evoked Potentials
Mesencephalon/physiology
Neurons/physiology
Reticular Formation/physiology
Sleep Stages/physiology
Wakefulness/physiology
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Steriade M
Oakson G
Ropert N
References (22)
22 references, click to expand
-
Brain stem gigantocellular neurons: patterns of activity during behavior and sleep in the freely moving rat.
J Neurophysiol. 1979 Jan;42(1 Pt 1):214-28
PMID: 219157
-
Selective firing by cat pontine brain stem neurons in desynchronized sleep.
J Neurophysiol. 1974 May;37(3):497-511
PMID: 4827018
-
Control of thalamic transmission by corticofugal and ascending reticular pathways in the visual system.
Physiol Rev. 1977 Jul;57(3):386-420
PMID: 196301
-
Input-output relations in computer-simulated nerve cells. Influence of the statistical properties, strength, number and inter-dependence of excitatory pre-synaptic terminals.
Kybernetik. 1968 May;4(5):157-71
PMID: 5710430
-
Ventral hippocampus spikes during sleep, wakefulness, and arousal in the cat.
Sleep. 1979 Spring;1(3):231-46
PMID: 504871
-
The sleep-waking cycle.
Ergeb Physiol. 1972;64:1-165
PMID: 4340664
-
Autoradiographic studies of the projections of the midbrain reticular formation: ascending projections of nucleus cuneiformis.
J Comp Neurol. 1976 Feb 15;165(4):417-31
PMID: 1262539
-
Maintained and evoked unit activity in the mesencephalic reticular formation of the freely behaving cat.
Exp Neurol. 1970 Sep;28(3):450-70
PMID: 4319960
-
Behavior of mesencephalic reticular neurons in sleep and wakefulness.
Exp Neurol. 1972 Jan;34(1):140-57
PMID: 4333207
-
Neuronal activity during the sleep-waking cycle.
Prog Neurobiol. 1976;6(3-4):155-376
PMID: 6996
-
Discharge patterns of cat pontine brain stem neurons during desynchronized sleep.
J Neurophysiol. 1975 Jul;38(4):751-66
PMID: 1159463
-
Neuronal discharges of the ventrolateral nucleus of the thalamus during sleep and wakefulness in the cat. I. Spontaneous activity.
Exp Brain Res. 1971 Jun 29;12(5):480-98
PMID: 5093726
-
Brain stem reticular formation and activation of the EEG.
Electroencephalogr Clin Neurophysiol. 1949 Nov;1(4):455-73
PMID: 18421835
-
Time course of discharge rate changes by cat pontine brain stem neurons during sleep cycle.
J Neurophysiol. 1974 Nov;37(6):1297-309
PMID: 4436702
-
Slow rhythmic rate fluctuations of cat midbrain reticular neurons in synchronized sleep and waking.
Brain Res. 1982 Sep 16;247(2):277-88
PMID: 7127129
-
Firing rates and patterns of output and nonoutput cells in cortical areas 5 and 7 of cat during the sleep-waking cycle.
Exp Neurol. 1978 Jul;60(3):443-68
PMID: 210033
-
Responsiveness of thalamic and cortical motor relays during arousal and various stages of sleep.
J Neurophysiol. 1969 Mar;32(2):251-65
PMID: 4304625
-
Sleep and waking activity of pontine gigantocellular field neurons.
Exp Neurol. 1977 Sep;56(3):553-73
PMID: 195831
-
Input-output organization of midbrain reticular core.
J Neurophysiol. 1981 Jul;46(1):17-31
PMID: 7264708
-
The role of monoamines and acetylcholine-containing neurons in the regulation of the sleep-waking cycle.
Ergeb Physiol. 1972;64:166-307
PMID: 4403272
-
Neuronal activity specific to paradoxical sleep in the ventromedial medullary reticular formation of unresdrained cats.
Brain Res. 1980 May 5;189(1):251-5
PMID: 7363091
-
A data acquisition and transfer system for analysis of neuronal activity by a central computer.
IEEE Trans Biomed Eng. 1981 Mar;28(3):299-301
PMID: 7228076