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C M Troy

Publications and source records attributed to C M Troy.

21 records · Page 2Linked to original sources

Regulation of peripherin and neurofilament expression in regenerating rat motor neurons.

Northern blotting, in situ hybridization and immunocytochemistry were used to study the changes in levels of mRNA coding for peripherin and in immunoreactivity of peripherin, a type III neuronal intermediate filament, in rat spinal motor neurons following axotomy of the sciatic nerve. For comparison, parallel studies examined the biology of neurofilament (NF) proteins in this model. The sciatic nerve was crushed at the junction of the L4-L5 spinal nerves. Levels of messenger RNA (mRNA) coding for peripherin in the motor neurons doubled by 4 days postaxotomy and remained elevated for a period of 6 weeks. Within 4-7 days of injury peripherin immunoreactivity increased significantly in cell bodies of motor neurons and remained elevated through 6 weeks. In contrast, no changes were detected in NF-M immunoreactivity over the same time period. By 8 weeks postaxotomy, levels of peripherin mRNA and protein returned to control values. The increases in the expression of peripherin parallel those of beta-tubulin and actin, and these changes are quite different from the alterations in neurofilament mRNA that decrease after axotomy. The contrasting responses of peripherin and NF to nerve injury indicates that each of these intermediate filaments may play distinct roles in nerve growth and regeneration.

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Ontogeny of the neuronal intermediate filament protein, peripherin, in the mouse embryo.

The expression of peripherin, a type III neuron-specific intermediate filament protein, and the middle neurofilament subunit were studied in the mouse embryo using immunofluorescence staining. The earliest staining for both proteins is seen at embryonic day 9 in the myelencephalon, initially as fiber staining followed by cell body staining in the developing facial and acoustic nuclei. As the embryo develops, there is rostral as well as caudal extension of peripherin and staining is seen in the trigeminal ganglia, nerve fibers and in the enteric nervous system. As the spinal cord forms there is anti-peripherin staining in developing motoneurons of the anterior horns while little cell body staining is seen for the middle neurofilament subunit. Both antibodies stain the developing dorsal root and its entry zone, but peripherin is found in the secondary sensory and commissural fibers while the middle neurofilament subunit is not. While both proteins are found in the neurons of the dorsal root ganglia, their distribution varies. The larger peripheral cells of the ganglia contain both proteins while the smaller more central cells, constituting over 60% of the cells in the ganglia, contain only peripherin. A similar picture is found in the sympathetic ganglia where there are cells which contain peripherin. middle neurofilament subunit or both, but where the majority of the neurons have only peripherin in their cell bodies. Peripherin is not found in the developing retina or in the adrenal medulla. Peripherin is also completely absent from cell bodies in the cerebral and cerebellar cortices. These results indicate that peripherin is found in development only in regions in which it is found in the adult. It can either co-exist with neurofilaments in the same neuron or the two may be independently expressed.

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Processing of enkephalin precursors by chromaffin granule enzymes.

Subcellular localization studies indicate that the enzyme activities which cleave enkephalins from larger polypeptides are located in both membranous and soluble components of the chromaffin granules and not in the lysosomes. Cleavage of endogenous precursors produced methionine enkephalin [Met-E], leucine enkephalin [Leu-E], and Met-E-Arg6. Cleavage of synthetic peptide E produced Leu-E, Met-E, and Met-E-Arg6. The pH optimum for enkephalin production is pH 5.7. Dithiothreitol prevents the inhibition of enkephalin conversion produced by p-chloromecurobenzoate. Studies with peptide E indicate that cleavage appears to occur at pairs of basic amino acid residues. The presence of enkephalin producing enzymes with the precursors and the products in the chromaffin granules could be important in the elucidation of the factors that regulate enkephalin biosynthesis.

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