Search PubMed⌕ Search

Biomedical subjects

M E Selzer

Publications and source records attributed to M E Selzer.

62 records · Page 4Linked to original sources

Variability in maps of identified neurons in the sea lamprey spinal cord examined by a wholemount technique.

A technique is described for preparing toluidine blue-stained wholemounts of lamprey spinal cords. By this technique virtually all the neurons in the spinal cord can be studied with respect to their soma size and shape, their primary dendrites, and sometimes secondary dendrites and proximal portions of the axon. Several cell types previously studied physiologically and described by others in cross section are described in wholemounts. These are dorsal cells, giant interneurons, edge cells and lateral cells. In addition, several unique cell types are noted in wholemount which were previously unremarked upon. These include obliquely oriented bipolar cells, trident-shaped cells located mostly in the rostral two-thirds of the spinal gray column, and small neurons with cell bodies in the dorsal and ventral axon tracts. Edge cells, which had previously been described as having large cell bodies close to the lateral edge of the lateral axon tracts with large medially oriented dendrites, are shown to be quite heterogeneous in size, location of soma and dendritic tree configuration. By use of the wholemount technique, 4 spinal cords of large sea lamprey larvae, close to transformation, were mapped for lateral cells, giant interneurons and dorsal cells. Considerable variability was noted in numbers and locations of these cells. The possible significance of this finding for the development of the vertebrate nervous system is discussed.

Animals↗

The action of phenytoin on a composite electrical-chemical synapse in the lamprey spinal cord.

The effect of phenytoin (PTN), 20 microgram per milliliter, was tested on the composite electrical-chemical synapse between pairs of giant interneurons in the isolated spinal cords of river lampreys (Ichthimyzon unicuspis). The main observations were that: (1) PTN reversibly reduced the chemical component of the excitatory postsynaptic potential by up to 70%; (2) PTN greatly reduced or eliminated posttetanic potentiation (PTP) of the chemical component; (3) PTN produced little or no decrease in the size of the electrical component; and (4) PTN did not cause blockage of the electrical component during high-frequency stimulation of the presynaptic neuron. Since the electrical component reflects the presynaptic spike, the suppression of PTP cannot be explained by blockage of this spike during the tetanus. These four observations are consistent with a current hypothesis concerning the anticonvulsant effect of PTN--that the drug inhibits calcium entry into stimulated presynaptic terminals. This would block PTP by reducing the accumulation of calcium in the terminal during repetitive stimulation.

Animals↗

Mechanisms of functional recovery and regeneration after spinal cord transection in larval sea lamprey.

1. Large sea lamprey larvae, close to metamorphosis, regained swimming coordination after several weeks following complete spinal cord transection. Recovery was much faster when animals were kept at 23 than at 12 degrees C. 2. The behavioural recovery involved a regenerative mechanism in the spinal cord, since stimulation of the head resulted in tail curling, even when all tissue other than spinal cord and notocord was stripped away for several cm above and below the transection. 3. Following complete behavioural recovery, stimulation of the rostral cord evoked electrical signals recorded from the cord dorsum for only 10 mm below the transection. 4. Dorsal cells and giant interneurones, which normally project to the brain, could not be antidromically activated across the transection zone. However, giant interneurones could be activated polysynaptically by descending volleys. 5. Twelve of eighteen large reticulospinal axons followed in serial sections regenerated across the glial-ependymal scar, but branched abnormally and migrated away from their customary locations. They became smaller, and were finally lost within 4 mm of the centre of the transection zone. 6. These data suggest that behavioural recovery does not involve long axon tract regeneration. An alternate hypothesis, that short distance sprouting of axons across the transection zone may result in synapse formation with propriospinal interneurones which relay the necessary information, is discussed.

Action Potentials↗