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Degeneration of myelinated sympathetic nerve fibres following treatment with guanethidine

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Journal of Neurocytology

Summary

The specificity and characteristics of the degeneration of myelinated axons after chronic guanethidine treatment have been investigated in sympathetic and non-sympathetic nerves. Adult male Sprague-Dawley rats aged approximately 43 weeks were treated with guanethidine sulphate (50 mg per kg body weight per day) for between ten days and six weeks. Tissues were examined by qualitative and quantitative light and electron microscopy. In the superior cervical (sympathetic) ganglion (SCG), guanethidine treatment produced a 78% decrease (P = 0.009) in the mean number of myelinated fibres at a standard level of section, compared to the contralateral control ganglion which was removed surgically prior to drug treatment. This reduction in the treated SCG was apparent after 10 days, though complete degeneration of nerve cell bodies was not widespread at this stage. Degeneration of unmyelinated axons was extensive. Degenerating myelinated fibres were consistently small in diameter (up to ∼ 3μm). In individual myelinated fibres the earliest signs of degeneration involved disruption of axonal organelles, particularly the cytoskeleton, and focal widening of the periaxonal space. Myelin breakdown followed these events; degeneration of myelin still associated with a structurally intact axon was not observed. Myelin breakdown appeared to take place initially within the Schwann cell, at least to the stage of ‘loosened’ membranes. However, infiltrating cells were also involved in myelin phagocytosis. At all stages of treatment some small diameter myelinated fibres remained intact, and there was no evidence of degeneration of the larger diameter fibres (up to ∼ 15 μm) which are consistently present in small numbers in the SCG. In the cervical sympathetic trunk, which carries preganglionic axons to the SCG and the vagus and sciatic nerves, degeneration only of unmyelinated axons was detected. These results indicate that guanethidine does not exert a primary degenerative influence on myelin or myelinating Schwann cells and that the myelin degeneration observed in the SCG is a secondary result of the previously documented selectively destructive effect of guanethidine on postganglionic sympathetic neurons. Surviving, small diameter myelinated fibres in the SCG could be either preganglionic or processes of resistant postganglionic neurons, while the larger diameter fibres are likely to be somatic. While the cervical sympathetic trunk, vagus and sciatic nerves all contain postganglionic sympathetic fibres it appears that few of these are myelinated, at least at the levels sampled in this study.

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References

  • Allt, G. (1976) Pathology of the peripheral nerve. InThe Peripheral Nerve (edited byLandon, D. N.), pp. 666–739 London: Chapman and Hall.

    Google Scholar 

  • Angeletti, P. U., Levi-Montalcini, R. &Caramia, F. (1972) Structural and ultrastructural changes in developing sympathetic ganglia induced by guanethidine.Brain Research 43, 515–25.

    Google Scholar 

  • Beuche, W. &Friede, R. L. (1984) The role of non-resident cells in Wallerian degeneration.Journal of Neurocytology 13, 767–96.

    Google Scholar 

  • Brooks-Fournier, R. &Coggeshall, R. E. (1981) The ratio of preganglionic axons to postganglionic cells in thesympathetic nervous system of the rat.Journal of Comparative Neurology 197, 207–16.

    Google Scholar 

  • Bowers, C. W. &Zigmond, R. E. (1979) Localization of neurons in the rat superior cervical ganglion that project into different postganglionic trunks.Journal of Comparative Neurology 185, 381–92.

    Google Scholar 

  • Bowers, C. W. &Zigmond, R. E. (1981) Sympathetic neurons in lower cervical ganglia send axons through the superior cervical ganglion.Neuroscience 6, 1783–91.

    Google Scholar 

  • Burnstock, G., Evans, G., Gannon, B. J., Heath, J. W. &James, V. (1971) A new method of destroying adrenergic nerves in adult animals using guanethidine.British Journal of Pharmacology 43, 295–301.

    Google Scholar 

  • Chad, D., Bradley, W. G., Rasool, C., Good, P., Reichlin, S. &Zevin, J. (1983) Sympathetic postganglionic unmyelinated axons in the rat peripheral nervous system.Neurology 33, 841–7.

    Google Scholar 

  • Eränkö, L. &Eränkö, O. (1971) Effect of guanethedine on nerve cells and small intensely fluorescent cells in sympathetic ganglia of newborn and adult rats.Acta pharmacologica et toxicologica 30, 403–16.

    Google Scholar 

  • Forssman, W. G. (1964) Studien über den Feinbau des Ganglion cervicale superius der Ratte. I. Normale Struktur.Acta anatomica 59, 420–33.

    Google Scholar 

  • Heath, J. W. (1982) Double myelination of axons in the sympathetic nervous system.Journal of Neurocytology 11, 249–62.

    Google Scholar 

  • Heath, J. W. (1983) The sympathetic nervous system: A novel perspective on the control of myelinating Schwann cells. InMolecular Pathology of Nerve and Muscle (edited byKidman, A. D., Tomkins, J. K., Morris, C. A. &Cooper, N. A.), pp. 21–37. New Jersey: Humana Press.

    Google Scholar 

  • Heath, J. W. &Burnstock, G. (1977) Selectivity of neuronal degeneration produced by chronic guanethedine treatment.Journal of Neurocytology 6, 397–405.

    Google Scholar 

  • Heath, J. W., Evans, B. K. &Burnstock, G. (1973) Axonal retraction following guanethedine treatment. Studies of sympathetic neuronsin vivo.Zeitschrift für Zellforschung und mikroskopische Anatomie 146, 439–51.

    Google Scholar 

  • Heath, J. W., Evans, B. K., Gannon, B. J., Burnstock, G. &James, V. (1972) Degeneration of adrenergic neurons following guanethidine treatment. An ultrastructural study.Virchows Archiv. Abteilung B-Zellpathologie 11, 182–97.

    Google Scholar 

  • Heath, J. W. &Mondy, P. J. (1985) Surgical transection of the body of the rat superior cervical ganglion.Neuroscience Letters, Suppl.19, S69.

    Google Scholar 

  • Heath, J. W., Tracey, E. A. &Smith, D. (1983) Increased myelination in ageing sympathetic nerve.Journal of Anatomy 136, 649.

    Google Scholar 

  • Heath, J. W., Ueda, S., Bornstein, M. B., Daves, G. D. &Raine, C. S. (1982) Buckthorn neuropathyin vitro: evidence for a primary neuronal effect.Journal of Neuropathology and Experimental Neurology 41, 204–20.

    Google Scholar 

  • Hirano, A. &Dembitzer, H. M. (1981) The periaxonal space in an experimental model of neuropathy: the mutant Syrian hamster with hindleg paralysis.Journal of Neurocytology 10, 261–9.

    Google Scholar 

  • Holtzman, E. &Novikov, A. B. (1965) Lysosomes in the rat sciatic nerve following crush.Journal of Cell Biology 27, 651–69.

    Google Scholar 

  • Jensen-Holm, J. &Juul, P. (1971) Ultrastructural changes in the rat superior cervical ganglion following prolonged guanethidine administration.Acta pharmacologica et toxicologica 30, 308–20.

    Google Scholar 

  • Johnson, E. M. &Manning, P. T. (1984) Guanethidine induced destruction of sympathetic neurons.International Review of Neurobiology 25, 1–37.

    Google Scholar 

  • Juul, P. (1973) Effects of various antihypertensive guanethidine derivatives on the rat superior cervical ganglion: histology, ultrastructure and cholinesterase histochemistry.Acta pharmacologica et toxicologica 32, 500–12.

    Google Scholar 

  • Kidd, G. J., Heath, J. W. &Dunkley, P. R. (1986a) Guanethidine-induced degeneration of myelinated post-ganglionic sympathetic nerves.Neuroscience Letters, Suppl.23, S60.

    Google Scholar 

  • Kidd, G. J., Heath, J. W. &Dunkley, P. R. (1986b) Selective degeneration of myelinated sympathetic nerves following treatment with guanethidineJournal of Anatomy (in press).

  • Langley, J. N. (1896) Observations on the medullated fibres of the sympathetic system and chiefly on those of the grey rami communicantes.Journal of Physiology 20, 1–76.

    Google Scholar 

  • Liu, H. M. (1974) Schwann cell properties. II. The identity of phagocytes in the degenerating nerve.American Journal of Pathology 75, 395–405.

    Google Scholar 

  • Mondy, P. J. &Heath, J. W. (1986) Proximal stump degeneration in myelinated postganglionic sympathetic nerves.Journal of Anatomy (in press).

  • Sacchi, O. &Rossi, M. L. (1981) Cholinergic through-fibres in the rat superior cervical ganglion.Journal of the Autonomic Nervous System 4, 101–6.

    Google Scholar 

  • Schubert, T. &Friede, R. L. (1981) The role of endoneurial fibroblasts in myelin degeneration.Journal of Neuropathology and Experimental Neurology 40, 134–54.

    Google Scholar 

  • Spencer, P. S. &Schaumburg, H. H. (1980) Classification of neurotoxic disease: a morphological approach.Experimental and Clinical Neurotoxicology (edited bySpencer, P. S. &Schaumburg, H. H.), pp. 92–9. Baltimore: Williams & Wilkins.

    Google Scholar 

  • Thomas, P. K. (1980) The peripheral nervous system as a target for toxic substances.Experimental and Clinical Neurotoxicology (edited bySpencer, P. K. &Schaumburg, H. H.), pp. 35–47. Baltimore: Williams & Wilkins.

    Google Scholar 

  • Velleman, P. R. &Hoaglin, D. C. (1981)Applications, Basics and Computing of Exploratory Data Analysis. Belmont: Duxbury Press.

    Google Scholar 

  • Weinberg, H. J. &Spencer, P. S. (1978) The fate of Schwann cells isolated from axonal contact.Journal of Neurocytology 7, 555–69.

    Google Scholar 

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Kidd, G.J., Heath, J.W. & Dunkley, P.R. Degeneration of myelinated sympathetic nerve fibres following treatment with guanethidine. J Neurocytol 15, 561–572 (1986). https://doi.org/10.1007/BF01611857

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  • DOI: https://doi.org/10.1007/BF01611857

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