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Slow axonal transport.

New studies provide further evidence that the neuronal cytoskeleton is the product of a dynamic interplay between axonal transport processes and locally regulated assembly mechanisms. These data confirm that the axonal cytoskeleton in mammalian systems is largely stationary and is maintained by a smaller pool of moving subunits or polymers. Slow axonal transport in certain lower species, however, may exhibit quite different features.

Actins↗

Axonal transport of slow component a in sciatic nerves of hypo- and hyperthyroid rats.

Axonal transport of slow component a was studied in dorsal root afferents of the sciatic nerves of hypo- and hyperthyroid rats. Three experimental groups of rats were made hypothyroid at the age of 12 weeks by the administration of 131I. From the age of 22 weeks to the end of the study, the groups were treated with daily subcutaneous injections of thyroxine in various doses to make them hypo-(0 microgram/100 g), normo- (1 microgram/100 g), and hyperthyroid (6 micrograms/100 g), respectively. The hypothyroid group had a moderate thyroid hormone deficiency (a serum triiodothyronine level of 0.19 +/- 0.10 nmol/L and a heart/body weight ratio of 1.87 +/- 0.09 g/kg at time of killing compared with 0.60 +/- 0.09 nmol/L and 2.18 +/- 0.06 g/kg, respectively, for the control group). The hyperthyroid group was severely deranged, with serum triiodothyronine being 3.30 +/- 0.37 nmol/L and a heart/body weight ratio of 3.11 +/- 0.16 g/kg. The hypothyroid rats showed a reduction in mean velocity for the transport of slow component a (0.80 +/- 0.07 mm/day compared with 0.91 +/- 0.05 mm/day in the controls). The width of the wave of activity was smaller for the hyperthyroid group than for the control group (6.6 +/- 0.7 mm compared with 8.1 +/- 1.2 mm), suggesting an increased clearance of the axonally transported activity in the proximal axon. A decrease in transport of slow component a in hypothyroidism may be the explanation of peripheral neuropathy with axonal degeneration occasionally seen in patients with severe myxoedema.

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Axonal transport of antibodies to subcellular and protein fractions of rat brain.

Experiments examined the feasibility of using the axonal transport of antibodies as a possible means to characterize nerve membrane composition and the fate of internalized macromolecules. Polyspecific antibodies were generated in rabbits against rat brain synaptosomal and microsomal subcellular fractions and against wheat germ agglutinin-binding proteins isolated by lectin affinity chromatography. Antisera were injected into the vitreal chamber of the eye and into the facial musculature of anesthetized rats to test, respectively, for anterograde transport in retinotectal neurons and for retrograde transport in facial motoneurons. Control injections of preimmune serum were made into the opposite side. After survival for 4-168 h, animals were perfused and the axonally transported rabbit immunoglobulins detected in frozen sections of the brainstem using a modified peroxidase-antiperoxidase immunocytochemical procedure. Antisera against all 3 classes of neuronal antigens contained antibodies that underwent retrograde axonal transport. No evidence of anterograde transport was seen. Neurons containing retrogradely transported immunoglobulins exhibited punctate as well as diffuse staining of the cytoplasm and proximal dendrites, exclusive of the nucleus. Following retrograde transport of antibodies to the synaptosomal fraction, staining of the neuropil around motoneurons was also observed, suggesting transcellular transport of these antibodies. Concentrations of injected antibodies as low as 1% of whole antiserum led to detectable retrograde transport. Increasing concentrations of antibodies above the amount in whole antiserum did not increase the intensity of staining in retrogradely labeled neurons, suggesting saturation. The findings support the view that antibodies to neural membranes are taken up and transported by binding to specific sites on nerve terminals.(ABSTRACT TRUNCATED AT 250 WORDS)

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Axonal transport of type III intermediate filament protein peripherin in intact and regenerating motor axons of the rat sciatic nerve.

Slow axonal transport of peripherin has been studied in the motor axons of both intact and regenerating rat sciatic nerves 7 days post-crush. The studies were done by two-dimensional gel electrophoresis after intraspinal injection of 35S-methionine. In the first experiment, the sciatic nerves were removed 3 weeks after the radiolabeling pulse and cut into 6 mm segments. Each nerve segment was submitted to two-dimensional gel electrophoresis and analyzed by an original procedure which allowed us to study the distribution along the nerve of the radioactivity associated with several proteins of the cytoskeleton, especially the intermediate filament proteins, peripherin, and the low molecular mass neurofilament protein, NF-L. Peripherin was transported at two main rates: 66% of the total radiolabeled peripherin moved at 1.42 mm/day and the remainder moved at 2.28 mm/day. The radioactivity associated with NF-L exhibited a similar pattern. In the second experiment, similar intraspinal injections were made 7 days after a unilateral crush of the sciatic nerve. Regenerating nerves exhibited a clear SCa wave. However, in contrast to the intact nerves, the SCb wave could not be precisely defined in the regenerating nerves. Thus, the changes in the amount of transported proteins were analyzed in the SCa wave only. Autoradiograms of 2D-PAGE revealed that in the regenerating axons, the quantity of transported peripherin in SCa was increased by 3.5-fold. In contrast, the quantity of transported NF-L was decreased by 1.6-fold. The regenerating motor axons conveyed significantly greater (approximately twofold) amounts of labeled tubulins and actin than did intact motor axons. Our results suggest that peripherin, although mainly conveyed by SCa, plays a role during the elongation process in addition to actin and tubulin.

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Fast axonal transport of labeled proteins in motoneurons of exercise-trained rats.

In this study, the fast orthograde axonal transport of radiolabeled proteins was measured to determine the effects of endurance-running training on transport velocity and amounts of transported proteins in rat sciatic motoneurons. Female rats were subjected to a progressive running-training program for 10-12 wk. Twenty-four hours after the last training session, rats underwent right L4-L5 dorsal root ganglionectomy. The next day, 20 microCi of [3H]leucine was injected bilaterally in the vicinity of the motoneuronal cell bodies supplying the sciatic nerve, to study axonal transport parameters. Results showed that peak and average transport velocities of labeled proteins were significantly (P less than 0.05) increased by 22 and 29%, respectively, in the deafferented nerves of the runners as compared with controls. Moreover, the amount of total transported protein-bound radioactivity was increased in both left (40%) and right (37%) sciatic nerves of the runners. An exhaustive exercise session reduced (P less than 0.05) peak displacement (8%) and total transported protein-bound radioactivity (36%) in the sciatic nerves of control rats, whereas no changes were noticed in trained animals. The data suggest that chronic endurance running induces significant adaptations in the fast axonal transport of labeled proteins.

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Slow axonal transport and the genesis of neuronal morphology.

The classic view of slow axonal transport maintains that microtubules, neurofilaments, and actin filaments move down the axon relatively coherently at rates significantly slower than those characteristic of known motor proteins. Recent studies indicate that the movement of these cytoskeletal polymers is actually rapid, asynchronous, intermittent, and most probably fueled by familiar motors such as kinesins, myosins, and cytoplasmic dynein. This new view, which is supported by both live-cell imaging and mechanistic analyses, suggests that slow axonal transport is both rapid and plastic, and hence could underlie transformations in neuronal morphology.

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Physical methods for the study of the dynamics of axonal transport.

Currently used techniques for the study of the dynamics of axonal transport are reviewed. Emphasis is placed on those nonstructural and nonbiochemical methods which are most useful in the investigation of the dynamics of the mechanisms that underline the transport process. The methods by which the transport of specified materials may be assessed are divided into two broad groups: those which involve the collection, or accumulation, of transported materials at a region where transport is slowed or arrested, and those methods in which the distribution of a marker of the transported material is assayed in a series of nerve segments. Potential problems and sources of error associated with these techniques are considered as is their applicability to particular biological preparations. Recently introduced methods for concentrating and labeling transported material are described. New methods for conducting segment analysis of transported material by the use of position-sensitive detectors of radiation are considered. Optical methods of detecting axonal transport are reviewed with emphasis being placed on recently introduced methods and on the means by which the motion of optically detected organelles may be analyzed. In addition, biological preparations which are particularly suited to the optical approach are described.

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Retrograde axonal transport of phospholipid in rat sciatic nerve.

Retrograde axonal transport of phospholipid was studied in rat sciatic motoneuron axons by placing collection crushes on the nerve at intervals after injection of [methyl-3H]choline into the lumbosacral spinal cord, and allowing labelled material undergoing anterograde or retrograde movement to accumulate adjacent to the collection crushes. Control experiments showed that the accumulations of label were not a result of local uptake of circulating precursor. The majority of the 3H label was associated with phosphatidylcholine. Accumulation of label at the distal collection crush, representing retrograde transport, was observed subsequent to the anterograde transport of phospholipid. In comparison with a previous study on retrograde transport of protein, the following points were noted: (1) onset of retrograde transport occurred at approximately the same time after precursor injection (10-20 h) for both protein and phospholipid; (2) retrograde transport of lipids was more prolonged: maximum retrograde transport occurred later for phospholipid (approximately 30 h) than for protein (15-20 h), and declined to half-maximum between 49 and 99 h, compared to a corresponding value of 24-28 h for protein; (3) the proportion of total anterograde-transported activity subsequently undergoing retrograde transport was less in the case of phospholipid, at least over the time interval studied (up to 99 h after precursor injection). The similar times of onset of retrograde transport of phospholipid and protein support the concept of retrograde transport as a recycling mechanism returning to the cell body membrane fragments that were earlier transported into the axon. Coordinated retrograde transport of labelled protein and phospholipid components of the recycled membranes would be predicted.(ABSTRACT TRUNCATED AT 250 WORDS)

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Does nerve impulse activity modulate fast axonal transport?

The possibility that the amount of newly synthesized material made available for fast axonal transport is regulated by nerve impulse activity was examined in an in vitro preparation of bullfrog dorsal root ganglia (DRG) and sciatic nerve. Under conditions that precluded effects of impulse activity on either uptake or incorporation of precursor, patterned stimulation of the sciatic nerve (1 out of every 2 s) produced a frequency- and time-dependent decrease in the amount of radiolabeled protein accumulating at a nerve ligature. The response to patterned stimulation was significantly greater than that to continuous stimulation when the same number of stimuli were delivered. In unligated nerve preparations, patterned stimulation decreased the amplitude of the transport profile with no concomitant change in the wave front distance. Nerve stimulation produced no observable ultrastructural alterations within neuronal cell bodies of the DRG. We propose that the physiological significance of these results is not that nerve impulse activity decreases fast axonal transport, but that the amount of transport increases during periods of electrical quiescence. According to this hypothesis, activity-dependent macromolecules of the axolemma and nerve terminals are replenished during periods when the neuron is firing less frequently. These findings are discussed in light of reports that chronic in vivo stimulation increases the amount of fast-transported, radiolabeled protein (Chan et al., 1989) and that TTX-blockade of neuronal activity has no effect on protein transport (Edwards and Grafstein, 1984; Riccio and Matthews, 1985).

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Axonal transport of actin and actin-binding proteins in the rat sciatic nerve.

Actin is one of the major cytoskeletal proteins carried in slow axonal transport. Since more than 50% of actin in the axon was recovered in the high-speed supernatant, we looked for G-actin-binding proteins in slow axonal transport. Two weeks after injection of L-[35S]methionine into the rat spinal cord (L3-L5), labeled proteins in the sciatic nerve were extracted and those with potential abilities to interact with G-actin were detected by two independent methods: (A) DNAase I affinity chromatography and (B) blot overlay with biotinylated actin. By method (A), a 68 kDa Ca(2+)-dependent binding protein and a 45 kDa Ca(2+)-independent binding protein were detected. The 68 kDa protein was also a major protein binding to actin in method (B). The 68 kDa protein was identified with the Ca(2+)-dependent phospholipid binding protein annexin VI by two-dimensional electrophoresis and Western blotting. As annexin VI is a component of slow axonal transport, it does not seem to be bound to membranous organelles in the axon. Our results suggest that annexin VI may play a role in the control of actin assembly and membrane-microfilament interaction.

Actins↗

Axonal transport of [3H] GABA and [3H] glutamate in excitatory and inhibitory neurons innervating lobster exoskeletal musculature.

This paper describes the results of intracellular injections of radiolabelled neurotransmitters and transmitter precursor substances, including glutamate, GABA, aspartate, octopamine, tyramine, tryptophan, and choline, into cell bodies of identified excitatory and inhibitory neurons innervating lobster extensor musculature. The distributions and identities of radioactive substances appearing in axons were examined at various times following injection and in vitro incubation. Injected GABA and glutamate were found in appreciable quantities in both excitatory and inhibitory axons and migrated down axons at an estimated rate of between 16 and 22 mm/day at 12 degrees C, whereas the other substances tested were present in substantially smaller quantities and migrated at an estimated rate of less than 7.5 mm/day at 12 degrees C. Injected GABA, D-glutamate and L-glutamate accumulated proximal to ligatures tied around nerves, whereas neither octopamine nor aspartate accumulated proximal to ligatures. Since GABA is the transmitter substance released by inhibitory neurons and L-glutamate is thought to be released from excitatory nerve terminals, these results are consistent with the suggestion that amino acids serving as neurotransmitters are axonally transported. The specificity of axonal transport does not appear to be restricted to the cognate neurotransmitter, as indicated by the movement of L-glutamate in inhibitory axons and GABA in excitatory axons and of D-glutamate in both excitatory and inhibitory axons, but rather may be relaxed to include substances closely related to the neurotransmitter. Some restrictions, however, are apparently placed on axonal transport of small charged molecules in these neurons in that other substances tested migrated down nerves at a considerably slower rate.

Animals↗

Changes in axon size and slow axonal transport are related in experimental diabetic neuropathy.

In the sciatic system of rats with streptozocin (SZ)-induced diabetes, delay of axonal transport of neurofilament (NF) proteins, tubulin, and other proteins is associated with a change in axonal caliber, which increases by 40% in lumbar motor roots and decreases by 36% in tibial nerves. Since in large myelinated axons caliber is a function of the number of NF, which, in turn, is regulated by axonal transport, we studied the correlation of the number of NF and microtubules (MT) with axonal cross-sectional area in the sciatic system of SZ-treated rats to investigate whether the changes in caliber could be attributed to the impairment of transport. Despite the changes in cross-sectional area, diabetic axons in both proximal motor roots and distal tibial nerves maintained the ratios of number of NF and MT to cross-sectional area found in controls. Our findings suggest that, in rats with SZ-induced diabetes, the proximal and distal alterations of axonal caliber are an adjustment to the change in number of NF and/or MT that results from the impairment of the slow axonal transport.

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Mechanisms of the inhibition of fast axonal transport by local anesthetics.

The present study attempted to clarify the mechanism(s) by which local anesthetics inhibit fast axonal transport. Spinal nerves of the bullfrog were incubated with local anesthetics under conditions known to inhibit transport and the effects of these exposures to local anesthetics on the content of adenosine triphosphate and creatine phosphate in nerves and on the density of microtubules in unmyelinated axons were examined. Lidocaine, at concentrations of 14 or 20 mM, did not reduce significantly the content of adenosine triphosphate (although significant reductions in creatine phosphate were observed); the density of microtubules was also not affected by 14 mM lidocaine. Some mechanism other than inhibition of oxidative metabolism or disruption of microtubules must therefore be responsible for the inhibition of fast axonal transport by 14 mM lidocaine. Significant reductions in the content of adenosine triphosphate were observed with 1 or 2 mM tetracaine and with 0.5 or 1 mM dibucaine (this latter concentration of dibucaine also reduced the content of creatine phosphate); however, comparison with the effects of 2,4-dinitrophenol indicated that these inhibitions of oxidative metabolism were insufficient to inhibit transport in the case of 0.5 mM dibucaine or could at best only partly explain the inhibition of transport in the other cases. Since the density of microtubules was not affected by 1 mM tetracaine and was not sufficiently reduced by 0.5 mM dibucaine to inhibit transport, some other effect must again largely contribute to or be solely responsible for the inhibition of fast axonal transport by these concentrations of dibucaine and tetracaine.

Adenosine Triphosphate↗

The virtue of being too early: Paul A. Weiss and 'axonal transport'.

The essay introduces how Paul A. Weiss (1898-1989) analyzed his data on neuronal outgrowth and axonal transport, supported by constriction experiments of thousands of living mature nerve fibers. At the University of Chicago his group measured the steady proximo-distal flow of nerve fibers. To visualize the data he used tissue culturing, light microscopy, radioactive tracers, time-lapse motion pictures and electronmicroscopy. The work resulted in the discovery of fasciculation of outgrowing nerves and a computation of the rate of axonal transport, published in a classical article in 1948. He stated that the outgrowth of nerve fibers occurs from nerve centers in their nucleated cell bodies by fasciculation and protein synthesis. However, at that time one suspected the published microphotograph to be an idealized image and, therefore, did not accept the analysis, or the 'new' knowledge. In the mid 1960s the improved technique of autoradiography confirmed in an indirect way Weiss data and analysis of axonal transport. The objective here is to show (1) how Weiss employed the visibility of micrographs and drawings to corroborate his observations and analysis on axonal dynamics, and (2) to offer some tentative suggestions why his colleagues did not accept the 'neuro-images' as an evidence of new knowledge.

Axonal Transport↗

Proteins of axonal transport: investigation of solubility characteristics and behaviour in gel filtration.

Rapid axonal transport of proteins in retinal ganglion cells of the rabbit was studied following intraocular injections of labelled amino acids. Approximately 10% of the transported radioactivity was found in the supernatant following homogenization and high-speed centrifugation of the nerve terminal region. Relatively simple manipulations with ionic strength, pH and the presence of a chelating agent could solubilize an equivalent amount of radioactivity from the pellet. Lithium diiodosalicylate solubilized most rapidly transported membrane proteins. Gel filtration of readily soluble rapidly transported radioactivity gave a main macromolecular radioactive peak with an approximate mol. wt. of 500,000 dalton as determined on Sephadex G-200. However, gel filtration on Sepharose CL-6B gave a mol. wt. of about 160,000 for the same radioactive peak. SDS polyacrylamide gel electrophoresis of rapidly transported soluble proteins and fractions derived from these proteins via gel filtration and ion exchange chromatography revealed in all cases a very complex picture of labelled polypeptides. Thus rapid axonal transport of soluble proteins in this system seems to involve many different macromolecules.

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Cytophotometric quantification of retrograde axonal transport of a fluorescent tracer (primuline) in mouse facial neurons.

A method for cytophotometric quantifications of retrograde axonal transport of a fluorescent tracer in tissue sections is described. As a fluorescent tracer the anionic vital stain primuline proved to be suitable since it resulted in a strong yellow-green fluorescence, which faded very slowly permitting localization of cells during illumination with UV-light. Primuline injected into the muscles of the vibrissae in mice was transported to the corresponding nerve cell bodies in the facial nucleus, where it appeared as fluorescent granules 9 h after the injection. The fluorescence intensity increased with increasing exposure times and concentrations of the injected tracers. The motor endplates showed no ultrastructural changes after the tracer injections. The motor endplates showed no ultrastructural changes after the tracer injections. With this method a substantial increase in tracer accumulation in facial neurons could be revealed during nerve regeneration 11 days after crushing the facial nerve. Small alterations in neuronal tracer accumulation could be measured after intoxication of the mice with botulinum and tetanus toxins. Since these toxins should cause a decrease or increase in the degree of synaptic activity the amount of retrograde axonal transport may to a certain extent be dependent on the synaptic function. The findings with this new technique therefore indicate that quantitative changes occur in axonal transport in materials from the periphery during different pathological and physiological conditions, which may be important for an understanding of how a nerve cell body is dependent on its peripheral field of innervation.

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Fast anterograde axonal transport of choline-containing lipids in rats with experimental diabetes.

This study was designed to measure the velocity of axonal transport of choline-containing lipids in sensory and motoneurones of control rats and rats with streptozotocin-induced diabetes of 3 weeks duration. An additional experiment was performed in which nerves from control and diabetic rats were maintained in vitro during the period between injection of isotope in the nerve cell body region and arrest of transport. This was done to preclude the effects of temperature differences between controls and diabetics. None of these experiments revealed defects of velocity of fast orthograde transport of labelled lipids in the diabetic rats. The results indicate that short-term experimental diabetes has no effect on the velocity of fast anterograde axonal transport of choline-containing lipids. The findings are discussed in relation to similar studies on the fast anterograde axonal transport of proteins.

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The 25 kDa synaptosomal-associated protein SNAP-25 is the major methionine-rich polypeptide in rapid axonal transport and a major substrate for palmitoylation in adult CNS.

A conspicuous correlate of the developmental transformation of axonal growth cones to synaptic terminals is a marked increase in synthesis and axonal transport of a methionine-rich, acidic polypeptide of approximately 25 kDa. This polypeptide, designated "super protein" (SuP), is the most prominent species among methionine-labeled proteins conveyed by rapid axonal transport in mature CNS and PNS neurons of warm- and cold-blooded vertebrates. We show here that SuP is identical to SNAP-25, a highly conserved synaptic protein of known primary structure, by immunoprecipitation with anti-SNAP-25 antiserum of SuP labeled with 35S-methionine and transported by retinal ganglion cells of rat and cat. In addition, we show that SNAP-25/SuP is the most prominent species among retinal polypeptides that incorporate 3H-palmitate in vivo, that it is fatty acylated through a hydroxylamine-labile, thioester bond, and that palmitoylated SNAP-25/SuP is axonally transported. Thus, SNAP-25/SuP is a rapidly transported constituent of the presynaptic apparatus and a major neuronal substrate for long-chain fatty acylation.

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