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At least 19 recordsLinked to original sources

Human motor activity in decerebrate states and their sequelae.

The behaviour of the motor activity was investigated in a selected group of neurosurgical patients with diverse cerebral and spinal lesions, as well as in a group of healthy controls. Under standard conditions the EMGs were simultaneously recorded from six muscles, and the time-voltage integral of the muscle action potentials were continuously recorded. In the foregoing work the behaviour of the motor activity in the decerebrate state and its sequelae is described.

Brain Injuries↗

Stochastic versus deterministic variability in simple neuronal circuits: I. Monosynaptic spinal cord reflexes.

Long time series of monosynaptic Ia-afferent to alpha-motoneuron reflexes were recorded in the L7 or S1 ventral roots in the cat. Time series were collected before and after spinalization at T13 during constant amplitude stimulations of group Ia muscle afferents in the triceps surae muscle nerves. Using autocorrelation to analyze the linear correlation in the time series demonstrated oscillations in the decerebrate state (4/4) that were eliminated after spinalization (5/5). Three tests for determinism were applied to these series: 1) local flow, 2) local dispersion, and 3) nonlinear prediction. These algorithms were validated with time series generated from known deterministic equations. For each experimental and theoretical time series used, matched time-series of stochastic surrogate data were generated to serve as mathematical and statistical controls. Two of the time series collected in the decerebrate state (2/4) demonstrated evidence for deterministic structure. This structure could not be accounted for by the autocorrelation in the data, and was abolished following spinalization. None of the time series collected in the spinalized state (0/5) demonstrated evidence of determinism. Although monosynaptic reflex variability is generally stochastic in the spinalized state, this simple driven system may display deterministic behavior in the decerebrate state.

Afferent Pathways↗

Descending influences on the responses of spinocervical tract neurones to chemical stimulation of fine muscle afferents.

1. In cats, extracellular micro-electrode recordings were made from axons of the spinocervical tract (s.c.t.) in both the decerebrate state and during cold block of the spinal cord (reversible spinal state) to examine the effects of intra-arterial injection of algesic agents (bradykinin, potassium, 5-hydroxytryptamine) into the gastrocnemius-soleus (g.s.) muscle on the discharge behaviour of s.c.t. neurones.2. In the decerebrate state without cooling the spinal cord 13% of the cells (eleven out of eighty-three) responded to intra-arterial injection of bradykinin, 33% (twenty-two out of sixty-nine) to 5-hydroxytryptamine, and 38% (thirty-five out of ninety-one) to potassium injection.3. The general time course and the latency of the responses of s.c.t. cells induced by injection of pain-producing substances into the g.s. muscle reflect in many respects the activations of g.s. group III and group IV primary afferent units studied previously.4. For twenty-seven s.c.t. neurones the period of recording was long enough to record the responses of the same cell to injections of algesic agents in both the decerebrate and the reversible spinal state. In the reversible spinal state 83% (nineteen out of twenty-three) of the s.c.t. neurones tested with all the three substances responded to at least one of the algesic agents. In the decerebrate state the percentage was lower (39%).5. Reversible spinalization led not only to a significant increase in the number of s.c.t. neurones responding to the algesic agents used but also to an increase in the magnitude of the chemically induced responses.6. The mean latency of the responses of neurones that were activated in both preparations were shorter in the reversible spinal state than in the decerebrate state.7. Control experiments showed that the responses to bradykinin and potassium were entirely due to the nervous outflow from the g.s. muscle. In contrast, intra-arterially applied 5-hydroxytryptamine influenced the s.c.t. cells via unknown additional sites of action.8. The results indicate that muscular group III and/or group IV units excitable by algesic substances do project on to neurones of the spinocervical tract. Furthermore it is concluded that the responses of s.c.t. neurones to activation of fine muscle afferents by algesic agents are subject to a descending control similar to the well known descending modulation of their responsiveness to cutaneous input. Therefore, in addition to serving as a cutaneous pathway the spinocervical tract may take part in muscular nociception.

Action Potentials↗

A study of a respiratory related variation of muscle tone during the decrement of decerebrate tonicity in ECT.

An oscillating decerebrate tonicity following the clonus phase in electroplexy was found to occur in the upper limbs, their tendon reflexes and the jaw; this increased with each expiration and decreased with inspiration. The times of these occurrences in the upper limbs were measured in groups where no anaesthesia, diazepam or methohexital were used. The mean times of their onset and end were related to other phenomena of ECT. The times of occurrence and duration of decerebrate tonicity were established and compared in the three cohorts. There was a definite relationship to the onset of respiratory rhythmicity in all three groups. The evidence for the existence of decerebrate tonicity and atonicity are discussed from experimental contributions and more recent clinical evidence of the clonus phase as an example of an oscillation between tonic and atonic decerebrate states. Further clinical and experimental data are discussed which show connections between the decerebrate state, cerebral and cerebellar functions, respiratory centres, brain-stem and gravity afferents during rest and locomotion. An explanation is offered that the oscillatory phenomena are probably a mechanism to aid respiration and motor efficiency.

Brain Stem↗