The ultrastructure and synaptic architecture of phrenic motor neurons in the spinal cord of the adult rat
- 31 January 1984
- journal article
- research article
- Published by Springer Nature in Journal of Neurocytology
- Vol. 13 (1), 85-109
- https://doi.org/10.1007/bf01148320
Abstract
Although light microscopic studies have analysed phrenic motor neurons in several different species, there has never been an ultrastructural investigation of identified phrenic motor neurons. In addition, electrophysiological studies have raised questions relating to the function of phrenic motor neurons which may be answered only by direct electron microscopic investigation. Thus, the present study was carried out to provide a detailed ultrastructural analysis of identified phrenic motor neurons. Phrenic motor neurons in the spinal cord of the rat were labelled by retrogradely transported horseradish peroxidase (HRP) after transecting the phrenic nerve in the neck and applying the enzyme directly to the central stump of the transected nerve. The results showed that the general ultrastructural characteristics of phrenic motor neurons were similar to those previously reported for other spinal motor neurons. However, phrenic primary dendrites appeared to be isolated from all other dendritic profiles in the neuropil. Primary dendrites were not fasciculated. Fasciculation occurred only among the more distal secondary and tertiary phrenic dendritic branches. Direct dendrodendritic or dendrosomatic apposition was rarely seen; gap junctions between directly apposing phrenic neuronal membranes were not observed. The membranes of adjacent phrenic neuronal profiles were most frequently separated by intervening sheaths of astroglial processes. Myelinated phrenic axons and a phrenic axon collateral were identified. The initial portion of the phrenic axon collateral was cone-shaped, lacked myelin, and thus resembled a miniature axon hillock. In one instance, a large accumulation of polyribosomes was observed within the hillock-like structure of a phrenic axon collateral. Eight morphological types of synaptic boutons, M, P, NFs, S, NFf, F, G and C were classified according to criteria used by previous investigators. Most of these endings (M, NFs, NFf, S and F) made synaptic contact with profiles of labelled phrenic somata and dendrites. F, NFf, and S boutons also terminated on phrenic axon hillocks. C and G boutons contacted exclusively phrenic somata and small calibre dendrites, respectively. P boutons established axo-axonic synaptic contacts with the M and NFs bouton. The morphological findings of the present study provide new data that may be related to phrenic synchronized output and presynaptic inhibition of primary afferents terminating on phrenic motor neurons.Keywords
This publication has 49 references indexed in Scilit:
- MICROELECTRODE STUDIES OF PHRENIC MOTONEURONSAnnals of the New York Academy of Sciences, 2006
- Morphology of cat phrenic motoneurons as revealed by intracellular injection of horseradish peroxidaseJournal of Comparative Neurology, 1983
- Electron microscopic observations on the synaptic contacts of group Ia muscle spindle afferents in the cat lumbosacral spinal cordBrain Research, 1983
- Two kinds of recurrent inhibition of cat spinal alpha‐motoneurones as differentiated pharmacologically.The Journal of Physiology, 1981
- Electron microscopic studies of serially sectioned cat spinal α‐motoneurons. IV. Motoneurons innervating slow‐twitch (type s) units of the soleus muscleJournal of Comparative Neurology, 1979
- Phrenic motoneurons in the cat: subpopulations and nature of respiratory drive potentialsJournal of Neurophysiology, 1979
- Morphological characteristics of dendrite bundles in the lumbar spinal cord of the ratBrain Research, 1976
- Ventral horn synaptology in the ratJournal of Neurocytology, 1976
- Origin of specific synaptic types in the motoneuron neuropil of the monkeyJournal of Comparative Neurology, 1975
- Synaptic connections between medullary inspiratory neurons and phrenic motoneurons as revealed by cross-correlationBrain Research, 1974