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Turnover of axonally transported phospholipids in nerve endings of retinal ganglion cells.

We have investigated the metabolic turnover of axonally transported phospholipids in myelinated axons (optic tract) and nerve endings (superior colliculus) of retinal ganglion cells. One week following intraocular injection of [2-3H]glycerol, turnover rates for individual phospholipid classes in the retina (which contains a number of other cell types in addition to the ganglion cells) were all very similar to each other, with apparent half-lives of approximately 7 days. Apparent half-lives of labeled phospholipids in superior colliculus (presumably primarily in retinal ganglion cell nerve endings) were 10 days for both choline and inositol phosphoglycerides and 13 days for both serine and diacylethanolamine phosphoglycerides. Subcellular fractionation data obtained from superior colliculus at various times after injection suggested that apparent turnover rates determined for nerve ending phospholipids probably were not significantly affected by transfer of axonally transported 3H lipids into myelin. Apparent half-lives for phospholipids in optic tract were somewhat longer than in superior colliculus, ranging from 11 to 18 days. The slower turnover rates in optic tract may, in part, reflect the transfer of some axonal lipids to the more metabolically stable pool of lipids in the myelin ensheathing the retinal ganglion cell axons. In both optic tract and superior colliculus, apparent half-lives for axonally transported phospholipids labeled with [32P]phosphate were only slightly longer than for [2-3H]glycerol, while those for [14C]choline and [3H]acetate were markedly longer, indicating differing degrees of metabolic conservation or reutilization of these precursors relative to glycerol.

Acetates↗

A theoretical approach to the analysis of axonal transport.

A theoretical model of intra-axonal transport is proposed that presupposes a carrier system moving down the axon in a distal direction. Protein and particle transport is achieved by their reversible association with the distally moving carriers. Mathematical equations representing the concentrations of moving carriers and proteins and/or particles within the axon at any position and time are proposed. Analysis of the equations demonstrates that a traveling wave solution for the particle concentration (an experimental fact) is possible provided the chemical interaction between particles and carriers exhibits positive cooperativity. The phase velocity of the wave solution is interpreted as the observed velocity of the intra-axonal transport, known to be independent of position of observation. In addition, the theory predicts a spectrum of transport velocities for different proteins, in agreement with observations. The velocity of a given protein is dependent on its affinity to the carrier.

Animals↗

Effect of spinal cord ischemia on axonal transport of cholinergic enzymes in rabbit sciatic nerve.

The fast axonal transport of acetylcholinesterase (AChE) and the slow transport of choline acetyltransferase (ChAT) were measured by the stop-flow ligation technique in the sciatic nerve of rabbits 6 and 24 h after ischemia performed by the occlusion of the abdominal aorta which lasted 40 min. Activities of these enzymes were also measured in punched samples of the spinal cord (L5-6). Results were correlated with those obtained from the sham-operated control group. Six h after ischemia, its only apparent effect was a different distribution of accumulated enzymes in the central nerve segments. Twenty-four h after ischemia, the transport of AChE was markedly depressed; proximodistal accumulation decreased by 68%, whereas enzyme activity in the intact contralateral nerve and in the ventral horns of the spinal cord was preserved. No effect of ischemia on the retrograde axonal transport of AChE was observed in this experimental model. Cytoplasmic ChAT is much more susceptible to necrotic degeneration than membrane-bound AChE; 24 h after ischemia its activity decreased significantly in all investigated parts of the sciatic motoneurones but the rate of slow axonal transport did not seem to be affected.

Acetylcholinesterase↗

Axonal transport of cytoskeletal proteins in oculomotor axons and their residence times in the axon terminals.

Cytoskeletal protein transport and metabolism are studied in the somatic motor and parasympathetic axons of the chicken oculomotor system. Kinetic analyses of pulse-labeled proteins indicate that the neurofilaments are transported 2-3 times more rapidly in the somatic motor axons than in the parasympathetic axons. By contrast, the transport rates of the slow component b (SCb) proteins are very similar in these axons. The parasympathetic axons terminate in the ciliary ganglion, and radiolabeling curves from the ciliary ganglion can be used to study the kinetics of cytoskeletal protein removal from the terminals. The rate of removal directly determines the residence time of the cytoskeletal proteins in the ciliary ganglion, and the residence time directly affects the shape and amplitude of the transport curves of the ganglion. A computer model was used to analyze these transport curves and to determine the half-residence time of the cytoskeletal proteins in the terminal regions. From the computer experiments, we estimate that the half-residence times of the neurofilament proteins actin and tubulin are 2, 3.5, and 7 d, respectively. The differences between the half-residence times of the cytoskeletal proteins indicate that the rate of protein removal from the terminals differs for these proteins. On the basis of these results, we propose that the removal mechanisms critically control the composition of the cytoskeleton in the terminal regions. Through their effects on its composition, the removal mechanisms have a crucial role in converting the cytoskeleton of the axon proper into the specialized cytoskeleton of the axon terminal.

Actins↗

Decreased axonal transport of structural proteins in streptozotocin diabetic rats.

We have examined the various axonal transport rates in sciatic nerve of streptozotocin diabetic rats 3 h and 10,25, and 50 d after the injection of tritiated proline into the fifth lumbar dorsal root ganglion. Proline-labeled proteins conveyed by the slow transport system were advanced more slowly in diabetic rats. No compensation for this delay took place in terms of protein synthesis, half-life, or transported amount. The decreased deliverance of slowly transported proteins (structural proteins) to the axons may well account for the reduced axon calibre shown in earlier reports. A hypothesis is proposed suggesting that the primary event in the development of neurological abnormalities in diabetes is an impairment of the retrograde axonal transport, secondarily leading to the abnormality of the anterograde transport of structural proteins.

Animals↗

Differential turnover of axonally transported glycoproteins.

Metabolic turnover of axonally transported glycoproteins has been examined in membranous and soluble subfractions of goldfish optic tectum following intraocular injection of [3H]fucose. Radioactivity in total transported glycoproteins reached a maximum in the tectum after 24-30 hr, then declined with a half-life of approximately 20 days. Radioactivity in the total membranous subfraction declined with a similar half-life of 20-21 days while radioactivity in the soluble fraction showed a significantly shorter half-life of approximately seven days. Various sized glycopeptides derived from the membranous subfraction showed differential rates of loss of radioactivity with the lower molecular weight nondialyzable molecules displaying the most rapid turnover. In contrast, the glycopeptides derived from the soluble fraction showed relatively uniform rates of turnover. The results are discussed in the context of metabolic compartmentalization between membranous and soluble glycoproteins and among the carbohydrate chains of the membranous molecules.

Animals↗

Locally synthesized phosphatidylcholine, but not protein, undergoes rapid retrograde axonal transport in the rat sciatic nerve.

Retrograde axonal transport of phosphatidylcholine in the sciatic nerve has been demonstrated only after injection of lipid precursors into the cell body region. We now report, however, that after microinjection (1 microliter) of [methyl-3H]choline chloride into the rat sciatic nerve (35-40 mm distal to the L4 and L5 dorsal root ganglia), time-dependent accumulation of 3H-labeled material occurred in dorsal root ganglia ipsilateral, but not contralateral, to the injection site. The level of radioactivity in the ipsilateral dorsal root ganglia was minimal at 2 h after isotope injection but was significantly increased at 7, 24, 48, and 72 h after intraneural isotope injection (n = 3-8 per time point); at these time points, all of the radiolabel in the chloroform/methanol extract of the ipsilateral dorsal root ganglia was present in phosphatidylcholine. The radioactivity in the water-soluble fraction did not show a time-dependent accumulation in the ipsilateral dorsal root ganglia as compared with the contralateral DRGs, ruling out transport or diffusion of precursor molecules. In addition, colchicine injection into the sciatic nerve proximal to the isotope injection site prevented the accumulation of radiolabel in the ipsilateral dorsal root ganglia. Therefore, this time-dependent accumulation of radiolabeled phosphatidylcholine in the ipsilateral dorsal root ganglia is most likely due to retrograde axonal transport of locally synthesized phospholipid material. Moreover, 24 h after injection of both [3H]choline and [35S]-methionine into the sciatic nerve, the ipsilateral/contralateral ratio of radiolabel was 11.7 for 3H but only 1.1 for 35S, indicating that only locally synthesized choline phospholipids, but not protein, were retrogradely transported.

Animals↗

Effects of endothelin-1 on components of anterograde axonal transport in optic nerve.

PURPOSE: Increased levels of endothelins (ETs) are associated with glaucoma and have been said to contribute to the development of glaucomatous optic neuropathy. In glaucoma, movement of selected components of anterograde axonal transport essential in ganglion cell survival is impaired-specifically, the transport of mitochondria. This study evaluates the effect(s) of a single administration of intravitreous ET-1 on anterograde axonal transport in the rat optic nerve. METHODS: Proteins for anterograde axonal transport were pulse labeled by intravitreous injection of (35)S-methionine plus or minus ET-1 (2 nmol) in HEPES buffer (pH 7.4). At appropriate time intervals, optic nerves were dissected, sectioned while frozen, and homogenized in denaturing buffer, and transported protein was quantitated by liquid scintillation counting. Counts corrected for efficiency, quench, background, and decay were statistically evaluated (ANOVA, n = 7). RESULTS: Effects of treatment with intravitreous ET-1 on anterograde axonal transport were significant, biphasic, and prolonged (4 hours to 21 days). The initial phase was a significant enhancement of transport at times normally associated with small, fast-moving tubulovesicles (4 and 24 hours), followed by significant impairments at times normally associated with transport of mitochondria (28-36 hours), cytoplasmic matrix (4 days), and cytoskeletal proteins (21 days). The most pronounced effect of ET-1 was decreased axonal transport at times associated with normal anterograde transport of mitochondrial proteins (28, 32, and 36 hours, P = < 0.001, P < 0.015, and P < 0.001, respectively). This was mimicked by ET-3 at 28 hours. CONCLUSIONS: Effects of intravitreous ET-1 are consistent with a receptor-mediated role for elevated ETs in pathologic misregulation(s) of anterograde axonal transport.

Animals↗

Acute treatment with pulsed electromagnetic fields and its effect on fast axonal transport in normal and regenerating nerve.

The mechanism whereby low-frequency electromagnetic fields accelerate axonal regrowth and regeneration of peripheral nerve after crush lesion is not known. One candidate is an alteration in axonal transport. In this study we exposed unoperated rats for 15 min/day, and rats that had undergone a crush lesion of the sciatic nerve, for 1 hr/day for 2 days, to 2-Hz pulsed electromagnetic fields. To label fast transported proteins, [3H]-proline was microinjected into the spinal cord, and the sciatic nerves were removed 2, 3.5, and 5 hr later. The rates of fast axonal transport were obtained for animals in all groups by counting sequential 2-mm segments of nerves. The following transport rates were found: in unoperated normal sciatic nerve not exposed to PEMF, 373 +/- 14 mm/day; in unoperated normal nerve exposed to PEMF, 383 +/- 14 mm/day; in sham crush nerves not exposed to PEMF, 379 +/- 19 mm/day; in sham crush nerve exposed to PEMF, 385 +/- 17 mm/day; in crushed nerves not exposed to PEMF, 393 +/- 16 mm/day. and in crushed nerves exposed to PEMF, 392 +/- 15 mm/day. The results of these experiments indicate that 1) a crush injury to the sciatic nerve does not alter the rate of fast axonal transport, and 2) low-frequency pulsed electromagnetic fields do not alter fast axonal transport rates in operated (crush) or unoperated sciatic nerves.

Animals↗

Bidirectional axonal transport of thallium in frog sciatic nerve.

Bidirectional axonal transport of radioactivity was demonstrated in frog sciatic nerve in vitro and in vivo after local application of the thallium isotope 204Tl+ to the nerve. The transport rate was similar in both directions and about 30 min/day at 18 degrees C. The transport was depressed by 2,4-DNP, low-temperature and vinblastine. A somewhat larger amount of radioactivity was transported in the retrograde than in the anterograde direction. The possibility that K+ is in part replaced by Tl+, which is transported bound to organelles, e.g. mitochondria, will be considered. Thallium might be a useful tool for future studies of axonal transport.

2,4-Dinitrophenol↗

Consequences of axonal transport blockade by batrachotoxin on mammalian neuromuscular junction. II. Late pre- and postsynaptic changes.

The present study describes the time course of recovery in the fast axonal transport of 3H-labeled proteins in the nerve and the electrophysiological parameters in the extensor muscle of rats after single subperineural injection of batrachotoxin (BTX) (9.3 x 10(-12) mol) into the peroneal nerve. The fast axonal transport of 3H-labeled proteins in the sciatic nerve showed significant accumulation of the labeled proteins proximal to the site of BTX injection at day 2. However, by day 7, when no locomotor deficit was visible, complete recovery of fast axonal transport had occurred. The recovery of membrane potential in this surface fibers of the extensor muscle, which showed atrophy even after 22 days of toxin administration, lagged far behind the recovery in the fast axonal transport. Between day 2 and 14 the extensor muscle showed partial membrane depolarization with almost complete recovery by day 22. From 18 h to 7 days after subperineural BTX injection, spontaneous (m.e.p.p.s.) or nerve evoked transmitter release were absent at the endplates of the affected extensor muscles. M.e.p.p.s. of very low frequency began to appear between day 7 and 10. Even at days 14 and 22, when most of the fibers tested showed m.e.p.p.s, the frequency of these mepps was significantly lower than that shown in corresponding control muscles. The profile of sensitivity of the extrajunctional region to microiontophoretically applied acetylcholine (ACh) showed extensive sensitivity (about 200 mV/nC) up to 14 days after BTX injection when the extensor muscle membrane was considerably depolarized. However, at day 22, when the RMP had returned to the control level, neither extrajunctional supersensitivity to ACh nor TTX-resistant action potentials could be detected. The persistence of membrane depolarization and other denervation signs in the extensor muscle, despite recovery in the fast axonal transport, suggests the existence of a blockade of other key particulates delivered to the synaptic region by slow axonal transport. The time course of recovery in the extensor muscle after BTX injection resembles in many respects that seen after nerve crush injury. The rate of recovery is fast due mostly to the ability of the toxin to produce disorganization and to depolarize the nerve without producing a break in continuity of the cytoarchitecture of axon.

Acetylcholine↗

Disruption of dynein/dynactin inhibits axonal transport in motor neurons causing late-onset progressive degeneration.

To test the hypothesis that inhibition of axonal transport is sufficient to cause motor neuron degeneration such as that observed in amyotrophic lateral sclerosis (ALS), we engineered a targeted disruption of the dynein-dynactin complex in postnatal motor neurons of transgenic mice. Dynamitin overexpression was found to disassemble dynactin, a required activator of cytoplasmic dynein, resulting in an inhibition of retrograde axonal transport. Mice overexpressing dynamitin demonstrate a late-onset progressive motor neuron degenerative disease characterized by decreased strength and endurance, motor neuron degeneration and loss, and denervation of muscle. Previous transgenic mouse models of ALS have shown abnormalities in microtubule-based axonal transport. In this report, we describe a mouse model that confirms the critical role of disrupted axonal transport in the pathogenesis of motor neuron degenerative disease.

Amyotrophic Lateral Sclerosis↗

Functional analysis of dynactin and cytoplasmic dynein in slow axonal transport.

The neuron moves protein and membrane from the cell body to the synapse and back via fast and slow axonal transport. Little is known about the mechanism of microtubule movement in slow axonal transport, although cytoplasmic dynein, the motor for retrograde fast axonal transport of membranous organelles, has been proposed to also slide microtubules down the axon. We previously showed that most of the cytoplasmic dynein moving in the anterograde direction in the axon is associated with the microfilaments and other proteins of the slow component b (SCb) transport complex. The dynactin complex binds dynein, and it has been suggested that dynactin also associates with microfilaments. We therefore examined the role of dynein and dynactin in slow axonal transport. We find that most of the dynactin is also transported in SCb, including dynactin, which contains the neuron-specific splice variant p135(Glued), which binds dynein but not microtubules. Furthermore, SCb dynein binds dynactin in vitro. SCb dynein, like dynein from brain, binds microtubules in an ATP-sensitive manner, whereas brain dynactin binds microtubules in a salt-dependent manner. Dynactin from SCb does not bind microtubules, indicating that the binding of dynactin to microtubules is regulated and suggesting that the role of SCb dynactin is to bind dynein, not microtubules. These data support a model in which dynactin links the cytoplasmic dynein to the SCb transport complex. Dynein then may interact transiently with microtubules to slide them down the axon at the slower rate of SCa.

Actin Cytoskeleton↗

Sabeluzole administration does not enhance fast axonal transport in normal adult rat sciatic nerve.

Sabeluzole (R58735, Janssen Research Foundation) increased rates of axonal transport in short term tissue culture experiments and in rats with streptozotocin-induced diabetes. The drug was tested for its subacute (3 days) net effect on axonally transported substances in motor, sensory, and adrenergic axons of normal adult rats. Sabeluzol was given once daily for 3 days, 1 or 10 mg/kg/day intraperitoneally. Immunofluorescence was used to identify transported material. Three or 6 hr after crushing the sciatic nerves, to interrupt anterograde and retrograde intraaxonal transport, cytofluorimetric scanning was used to quantitate accumulated immunoreactive material. Compared with vehicle treated control rats, no clear differences in the net amounts of accumulated material, or in rates of accumulation, were detected in any axonal type. Since the short-term crush procedure interrupts ongoing axonal transport, the accumulation pattern reflects the transport characteristics in the crushed axons. The absence of clear increases in transport of several substances in this study indicates that sabeluzole did not enhance net axonal transport above control levels in peripheral axons of normal adult rats. Possible reasons for the discrepancy with earlier observations on the effect of sabeluzole on fast axonal transport is discussed.

Animals↗

Axonal transport of mitochondria along microtubules and F-actin in living vertebrate neurons.

A large body of evidence indicates that microtubules (MTs) conduct organelle transport in axons, but recent studies on extruded squid axoplasm have suggested that actin microfilaments (MFs) may also play a role in this process. To investigate the separate contributions to transport of each class of cytoskeletal element in intact vertebrate axons, we have monitored mitochondrial movements in chick sympathetic neurons experimentally manipulated to eliminate MTs, MFs, or both. First, we grew neurons in the continuous presence of: (a) cytochalasin E to create neurites which had never contained MFs; or (b) nocodazole or vinblastine to produce neurites which had never contained MTs. Mitochondria moved bidirectionally at normal velocities along the length of neurites which contained MTs and lacked MFs, but did not even enter neurites grown without MTs but containing MFs. In a second approach, we treated established neuronal cultures with cytoskeletal drugs to disrupt either MTs or MFs in axons already containing mitochondria. In cytochalasin-treated cells, which retained MTs but lacked MFs, average mitochondrial velocity increased in both directions, but net directional transport decreased. In vinblastine-treated cells, which lacked MTs but retained essentially normal levels of MFs, mitochondria continued to move bidirectionally but the average mitochondrial velocity and excursion length were reduced for both directions of movement, and the mitochondria spent threefold as much time moving in the retrograde as in the anterograde direction, resulting in net retrograde transport. Treatment of established cultures with both drugs produced neurites lacking MTs and MFs but still rich in neurofilaments; these showed a striking absence of any mitochondrial motility. These data indicate that axonal organelle transport can occur along both MTs and MFs in vivo, but with different velocities and net transport properties.

Actin Cytoskeleton↗

Axonal transport of beta-receptors during the response to axonal injury and repair in locus coeruleus neurons.

Injections of the catecholamine neurotoxin, 6-hydroxydopamine, were placed in the ascending locus coeruleus (LC) pathway in the right cerebral cortex of rats partially destroying the noradrenergic projection to the somatosensory cortex. Norepinephrine (NE) levels fell to a nadir of 49% of control over the first 14 days, associated with a 40% increase in the number of beta-adrenoreceptor binding sites (labeled with [3H]dihydroalprenolol; [3H]DHA) in the denervated cortex. Both NE levels and cortical beta-receptor binding returned to control levels by 28 days. Similar changes, of lesser magnitude, also occurred in the unlesioned, left somatosensory cortex. Catecholamine histofluorescence studies supported these findings of denervation and reinnervation of the right cortex over a 3-month period. Anterograde axonal transport of beta-receptors was assessed by measuring the accumulation of beta-receptor binding sites ([3H]DHA) behind a second lesion placed in the more proximal portion of the ipsilateral LC pathway. Anterograde transport was completely blocked at 4 days, during the initial fall of NE levels, then was increased to 200% of control at 14-21 days, when recovery of cortical NE levels was beginning, and then returned towards control levels by 2-3 months when normal NE levels had been restored.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Morphology of axonal transport abnormalities in primate eyes.

The ultrastructure of the retina and optic nerve head was studied in primate eyes after central retinal artery occlusion. Within 2 hours of the vascular occlusion the inner retinal layers undergo watery (isosmotic) swelling. This watery swelling of axons and astroglia extends into the nerve head as far back as the anterior boundary of the scleral lamina cribrosa. The swelling is increased 4 hours after the occlusion, and by 24 hours disintegration has occurred. At the optic nerve head mitochondria and vesicles of smooth endoplasmic reticulum begin to accumulate within 2 hours. The accumulation increases at 4 hours and persists to 24 hours. The watery swelling seems characteristic of ischaemic axons. Membranous organelles accumulate at the boundary of an ischaemic zone when material carried by axonal transport is brought via the healthy axon segment to the boundary, but they cannot proceed further into the ischaemic zone. Such accumulation is typical of locations where rapid orthograde axonal transport or retrograde axonal transport is blocked. In contrast, when slow axonal flow is impaired, the swelling is characterised by an excess of cytoplasmic gel without a marked accumulation of organelles. Rapid orthograde transport and retrograde transport seem to be closely related to one another, while slow axoplasmic flow seems fundamentally different. From morphological findings we suspect that, in experimental glaucoma, intraocular pressure first affects the intracellular physiological process of rapid orthograde and retrograde axonal transport. Watery swelling may not occur unless the ischaemic injury to cell metabolism is more advanced. In contrast, in experimental papilloedema, the swelling results predominantly from impaired slow axoplasmic flow.

Animals↗

Ionic requirements for in vitro retrograde axonal transport of acetylcholinesterase.

The ionic requirements for retrograde axonal transport of acetylcholinesterase were studied in vitro in desheathed spinal nerves of the bullfrog; the accumulation of enzyme activity distal to a ligature served to evaluate the status of retrograde transport. After an 18 h incubation in control medium, the 2 mm segment of nerve immediately distal to the ligature contained approximately twice as much acetylcholinesterase activity as other more distal segment. Accumulation of acetylcholinesterase distal to the ligature was reduced during incubation in Ca2+-free medium plus 1 mM EGTA; retrograde transport was not diminished by the substitution of sucrose for the NaCl of the medium. In comparison with ionic requirements for orthograde fast axonal transport of protein, retrograde transport of acetylcholinesterase thus appears to share a Ca2+ requirement, but not a requirement for NaCl.

Acetylcholinesterase↗