Junction between parent and daughter axons in regenerating myelinated nerve: Properties of structure and rapid axonal transport
- 15 May 1989
- journal article
- research article
- Published by Wiley in Journal of Comparative Neurology
- Vol. 283 (3), 391-404
- https://doi.org/10.1002/cne.902830307
Abstract
The primary aim of this work was to investigate the properties of rapid axonal transport in regenerating myelinated axons in the sciatic nerve of Xenopus laevis, with particular attention to events at the junction between the proximal, intact axon (the “parent”) and the distal, newly formed axon (the “daughter”). Morphological studies indicated that all myelinated axons initiated regeneration and that at least 80% of these axons regenerated at a rate of 1 mm/day or greater (20°C). The ultrastructure of the junctional region was examined at regeneration times between 3 days and 20 weeks. The main qualitative change in the junctional axoplasm over this period was in its content of particulate organelles. At times up to 2 weeks regeneration, the junction contained abnormal numbers of 50 nm diameter vesicles and 10 nm granules. Between 2 and 5 weeks the junction showed in addition a peripheral rim of large membrane-bounded organelles around a central core of microtubules and neurofilaments. At longer times the numbers of large membrane-bounded organelles diminished and all junctions contained prominent accumulations of 10 nm granules. The rate of rapid axonal transport of protein was similar in parent and daughter axons. Compared to the parent axons, a 2–5 times greater amount of protein was deposited to a stationary phase in daughter axons. Specimens of nerve that were subjected to mechanical stress during the removal of the perineurium showed a large accumulation of rapidly transported protein in the region of the crush at regeneration times up to 40 days; some of the accumulated protein was subsequently transported retrogradely. Video microscopy of isolated axons supplied evidence that the transport deficit in mechanically stressed nerve was a partial block of anterograde vesicle transport, plus a reversal of anterograde transport, at the junction of parent with daughter axons. No structural changes were detected in mechanically stressed nerve. The results show that the junction between parent and daughter myelinated axons is a region with distinct morphology at which the dynamics of anterograde axonal transport may change dramatically.Keywords
This publication has 44 references indexed in Scilit:
- The release of axonally transported material from an in vitro amphibian sciatic nerve preparationJournal of Neurobiology, 1988
- Studies on the mechanism of the reversal of rapid organelle transport in myelinated axons of Xenopus laevisCell Motility, 1988
- Rapid axonal transport in Xenopus nerve in divalent cation free mediaCanadian Journal of Physiology and Pharmacology, 1985
- Intermittent myelination of small-diameter sciatic axons inXenopus laevisJournal of Neurocytology, 1985
- Axonal transport: A quantitative study of retained and transported protein fraction in the catJournal of Neurobiology, 1981
- The movement of membranous organelles in axons. Electron microscopic identification of anterogradely and retrogradely transported organelles.The Journal of cell biology, 1980
- The short term accumulation of axonally transported organelles in the region of localized lesions of single myelinated axonsJournal of Neurocytology, 1980
- Fast axonal transport of labeled protein in sensory axons during regenerationExperimental Neurology, 1978
- Release of protein from axons during rapid axonal transport: An in vitro preparationBrain Research, 1977
- A quantitative analysis of isotope concentration profiles and rapid transport velocities in the C‐fibers of the garfish olfactory nerveJournal of Neurobiology, 1975