[CONDITIONS OF FIXATION AND COMPARATIVE CYTOCHEMISTRY OF FORMATIONS DEMONSTRATED IN THE NERVE CELLS OF AUTONOMIC AND SPINAL GANGLIA].
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Spinal ganglia from a patient who died on the 6th day of varicella infection were examined by immunofluorescence and electron microscopy, and were compared with spinal ganglia from a patient dying on the 17th day of herpes zoster infection. In herpes zoster, typical intranuclear inclusion bodies were found in neurons, satellite cells and fibroblast-like cells of the ganglia, which contained numerous naked virus particles. In varicella, few changes were found by light microscopy but viral antigen was detected in a few neurons and satellite cells by immunofluorescence. Electron microscopy revealed scattered virus particles near the nuclear membrane of a neuron, satellite cells and capsular cells and enveloped particles in the cytoplasm of satellite cells. The particles in the nuclei were mostly naked virions with specific crescent-like inner-nuclear structure; those in the cytoplasm had complete and incomplete envelopes and showed pleomorphism. A "virus-like" intranuclear filament found in mononuclear cells in herpes zoster and a "plexiform vermicellar array" found in the nuclei of neurons in varicella are at present considered to be non-specific nuclear changes caused probably by viral infections.
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Information parameters (entropia and redundancy) of cervical and thoracic spinal ganglia of albino rat foetuses, mature animals (cat and dog) and human subjects were analysed. Information characteristics of spinal ganglia were shown to be level-specified and to depend on their functional peculiarities. Information parameters of thoracic spinal ganglia of man and different animals are specie specified and may be used in assessment of morphological structures as information systems.
In the spinal ganglia of the rabbit the nerve cell bodies, which in early developmental stages are mutually in contact, come to be completely isolated from each other by a satellite cell sheath and by a connective envelope before birth. The present study demonstrates that in the early postnatal months some nerve cell bodies are still arranged in clusters, and that the percentage of these decreases progressively throughout adult life. This decrease probably arises because in some of the ganglion neurons the process of envelopment of the perikaryon by an individual sheath begins later, or takes place more slowly, than in the majority of cases. Therefore, the relationship between neurons and between neurons and satellite cells may change in certain clusters of nerve cell bodies under normal circumstances during adult life.
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BACKGROUND: Monopolar electrocauterization (MEC) is widely used in spine surgery however electrical currents are hazardous for neural tissues, such as the spinal ganglia sited in the intervertebral foramina. We aimed to investigate the effects of MEC on spinal ganglia. METHOD: Fifteen male hybrid rabbits were included in the study. Three of the animals were used to analyze the findings regarding spinal ganglia without operation. The remaining animals underwent L4-5 disc surgery. For intra-operative facet denervation MEC was used for half of the animals. After one month, all animals were sacrificed and L5 spinal ganglia were removed for histopathological examination. The number and morphological changes of neurons in spinal ganglia were examined. FINDINGS: The mean number of live neurons was 22610 in non-operated rabbits; 21617 in the non-MEC group and 16692 in the MEC group. Neuronal degeneration was more prominent in the MEC group than in the non-MEC group. CONCLUSIONS: MEC used during spine surgery may be injurious to spinal ganglia and should be used with caution.
Serial sections of the trunk and tail of 26-day (13 mm) larval lampreys were examined by light and electron microscopy. Trunk region: Spinal ganglia and ventral nerves are seen alternately along the spinal cord and the notochord in the trunk. Spinal ganglia are located medially in intermyotome spaces with intersegmental blood vessels and send "dorsal nerves" ventrally along the vessels. "Ventral nerves" are seen on the midmedial surface of each myotome. Fibers containing dense-cored vesicles occur in the dorsal root but not in the ventral root. Caudal region: In the caudal one-third of the tail the ventral nerves are formed earlier than spinal ganglia and dorsal nerves. The most caudal (primitive) ventral nerve (root) develops at the 12th myotome from the caudal end of the series of myotomes, the caudalmost ganglion being formed between the 15th and the 14th myotome in a 13-mm larval lamprey. The intimate association of dorsolateral outflow (DLO) fibers (Nakao and Ishizawa: J. Comp. Neurol. 256:356-368, '87b) with neural crest cells (DO cells of Nakao and Ishizawa; ibid.) strongly suggested that these fibers play an important role as the substrate for guiding the cells to form compact cell masses as primitive spinal ganglia. Two types of cell groups are progressively distinguished in primitive spinal ganglia during development. One of them has a light round nucleus with a prominent nucleolus and a large amount of the perinuclear cytoplasm that contains abundant free ribosomes, rough endoplasmic reticulum (ER), numerous Golgi apparatuses, and dense bodies. Cells of the other type are characterized by a dense, flattened nucleus with a small amount of perinuclear cytoplasm that extends as a thin cytoplasmic sheet to surround cells of the other type as a whole, the basal lamina surrounding the whole cell mass. The former type is interpreted as neural cells and the latter satellite cells of the ganglion. Central processes of ganglionic neural cells are assumed to enter the spinal cord along DLO fibers by using them as a substrate to establish the dorsal root. Intersegmental blood vessels develop later than spinal ganglia and peripheral processes extend along the vessels.