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Biomedical subjects

H Collewijn

Publications and source records attributed to H Collewijn.

131 records · Page 8Linked to original sources

Intracellular recording from spinal motoneurones in cats with post-asphyxial rigidity.

1. Intracellular recordings were obtained from lumbar spinal motoneurones in cats with post-asphyxial rigidity of the hind limbs.2. Membrane potentials, latencies and (or) appearance of excitatory post-synaptic potentials, initial segment responses and soma-dendritic spikes were not materially different from those observed in cells of normal cords.3. Dorsal root stimulation activated all the motoneurones examined through monosynaptic pathways in contrast to cells in normal cords in which such a stimulus sometimes elicits only a post-synaptic potential. In a number of cells subsequent polysynaptic activation caused a spike about 10 msec after the monosynaptic response, notwithstanding the serious interneuronal destruction which characterized these preparations.4. In a few preparations the effects of acute asphyxiation could be examined. The soma depolarized at a rate of 3-4 mV/min. Synaptic activation was more resistant to O(2) lack than antidromic and direct excitation, in contrast to the experience with normal cells. Survival times of 8.5, 11 and 16 min were found. At certain levels of depolarization ;spontaneous' spikes were observed, which, since they were preceded by post-synaptic potentials, could be considered as the result of synaptic activation.5. To account for the enhanced reflex activity of rigid preparations, it was postulated that the substantial loss of interneurones in the cord had caused denervation supersensitivity of the motoneurones to the transmitter compound without materially changing their electrical excitability.6. It was postulated that the early presynaptic failure during asphyxiation in normal preparations was dependent on a mechanism resembling presynaptic inhibition. The prolonged asphyxial survival of reflex activity in rigid preparations may be due to the destruction of interneurones involved in this form of inhibition.

Animals↗

When push comes to shove: compensation for passive perturbation of the head during natural gaze shifts.

The effects of passive displacements to the head delivered by an abrupt push to the upper body were studied in human subjects during gaze shifts to nearby targets while the head was completely unrestrained. Accurate measurements of gaze were obtained via the Maryland Revolving Field Monitor, used to measure head and eye rotations unconfounded with translations, and by an acoustic ranging system, used to measure head translations. Compensation for head perturbations was quite good, with gaze errors much the same as gaze errors in the absence of the push. Compensation along one or both meridians was achieved by means of the vestibulo-ocular response in many of the gaze shifts. The results suggest an impressive ability to coordinate head and eye movements during natural gaze shifts, carried out by one or more different kinds of compensatory systems that the subject can access at will or according to task demands.

Eye Movements↗