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Interganglionic axonal transport of neural peptides within the nervous system of Aplysia.

Neurons of the circumesophageal ganglia of Aplysia synthesize 1--2000 dalton peptides and subject them to axonal transport in large quantities in the pleuro-visceral connective and pedal nerves. Most of the protein transported in the connective nerves accumulates in the abdominal ganglion, although some passes out its peripheral nerves. Autoradiography revealed no evidence for terminations of the transporting axons in possible neurohemal areas of this ganglion. It is suggested that these data reflect the existence of a pathway mediating the "directed delivery" of neural peptides in this nervous system.

Animals↗

Regeneration of motor axons in the rat sciatic nerve studied by labeling with axonally transported radioactive proteins.

Labeling regenerating axons with axonally transported radioactive proteins provides information about the location of the entire range of axons from the fastest growing ones to those which are trapped in the scar. We have used this technique to study the regeneration of motor axons in the rat sciatic nerve after a crush lesion. From 2 to 14 days after the crush the lumbar spinal cord was exposed by laminectomy and multiple injections of [3H]proline were made stereotactically in the ventral horn. Twenty-four hours later the nerves were removed and the distribution of radioactivity along the nerve was measured by liquid scintillation counting. There was a peak of radioactivity in the regenerating axons distal to the crush due to an accumulation of label in the tips of these axons. After a delay of 3.2 +/- 0.2 (S.E.) days, this peak advanced down the nerve at a rate of 3.0 +/- 0.1 (S.E.) mm/day. The leading edge of this peak, which marks the location of the endings of the most rapidly growing labeled fibers, moved down the nerve at a rate of 4.4 +/- 0.2 mm/day after a delay of 2.1 +/- 0.2 days; this is the same time course as that of the most rapidly regenerating sensory axons in the rat sciatic nerve, measured by the pinch test. Another peak of radioactivity at the crush site, presumed to represent the ends of unregenerated axons or misdirected sprouts, declined rapidly during the first week, and more slowly thereafter.

Animals↗

Loss of material from the retrograde axonal transport system in frog sciatic nerve.

Rapid axonal transport was studied in sciatic nerve preparations of the amphibian Xenopus laevis maintained in vitro at 23.0 +/- 0.2 degrees C. A pulse of [35S]methionine-labeled material was allowed to move in the anterograde direction until encountering a lesion, at which a portion of the pulse reversed directions and moved in the retrograde direction. By constricting the nerve during the course of the experiment, it was possible to prevent continuous return of label from the lesion, thus creating a retrogradely moving pulse that contained a defined quantity of radiolabel. Movement of both the anterograde and the retrograde pulse were monitored continuously for up to 24 h using a position-sensitive detector of ionizing radiation. The front and the back edge of the anterograde pulse were found to move at the rates of (mm/day) 179.9 +/- 3.9 (+/- SEM) and 149.9 +/- 5.9, respectively, and the front and the back edge of the retrograde pulse moved at the rates of 155.8 +/- 11.3 and 84.6 +/- 2.9, respectively. By comparison of the quantity of label lost to the stationary phase to the quantity of label calculated to have been present in the anterograde pulse, it was determined that 0.068 +/- 0.009 of the anterograde pulse is lost to each 3.18-mm region of nerve. Comparison of the quantity of label calculated to have been present in the retrograde pulse to that in the anterograde pulse revealed that 0.057 +/- 0.014 of the retrograde pulse is lost to each 3.18-mm region of nerve. It is concluded that protein originating in the cell body and which reverses its direction of transport at a lesion can be lost from the retrograde axonal transport system.

Animals↗

Changes in fast axonal transport during experimental nerve compression at low pressures.

The minimal pressure for impairment of fast anterograde axonal transport was determined in rabbit vagus nerve. Proteins, transported by fast anterograde axonal transport, were labeled by a microinjection of [3H]leucine into the nodose ganglion, and a small compression chamber was applied around the cervical vagus nerve. In this way the nerve was subjected to acute, graded compression. Compression at 20 mm Hg for 2 h as well as sham compression did not induce accumulation of axonally transported proteins at the level of compression. However, a pressure of 30 mm Hg for 2 h induced a block of axonal transport at the site of compression. The causes of the axonal transport block are discussed as well as the minimal pressure level in relation to pressures found in clinical nerve compression lesions.

Animals↗

Microinjection into an identified axon to study the mechanism of fast axonal transport.

Microinjection into an axon of an identified invertebrate neuron is shown to be a useful technique for analyzing the mechanisms of fast axonal transport. It permits direct assessment of the effect of agents that cannot permeate the plasma membrane on the translocation of material in the axon. The actin filament depolymerizer DNase I, when injected into the axon of the Aplysia neuron R2, caused a local block of fast transport of [3H]glycoprotein. Two agents that should interfere with the functioning of actin filaments without causing extensive depolymerization, tne N-ethylmaleimide-modified nuclease S1 fragment of myosin (injected) and dihydrocytochalasin B (applied externally). had no effect. Together these results suggest that actin plays a structural role in the axonal cytoskeleton rather than a role in transport force generation, the effect of DNase I being mediated by structural disordering of the axoplasm. Experiments were also done with inhibitors of dynein, the microtubule-associated ATPase. erythro-9-[3-(2-Hydroxynonyl)]adenine blocked transport but vanadate was ineffective.

Actins↗

Temporal and spatial variations in slow axonal transport velocity along peripheral motoneuron axons.

Neuronal axons are cellular extensions that can reach more than a meter in length. To maintain such a structure, macromolecules synthesized in cell bodies must be transported to the distal axons. Proteins associated with membranous organelles are generally transported in several fast transported groups, while cytoplasmic proteins, mostly composed of cytoskeletal proteins, are transported in slowly transported groups. Neurofilaments are a main component in the slowly transported group. Composed of three polypeptide subunits (NF-H, NF-M and NF-L), they are the most abundant cytoskeletal element in large myelinated axons. In various neurological or neurotoxic disorders, selective accumulation of neurofilaments was observed in different compartments of a neuron (cell bodies, proximal or distal axons). The underlying mechanism for this regional selectivity has been unclear. Using the classical pulse labeling method, we examined the changes in neurofilament transport velocity in transgenic mice that overexpress different neurofilament subunits. We present evidence that at least three velocities of neurofilament transport exist along peripheral motor axons. Each of these velocities was altered differently depending on which neurofilament subunit was overexpressed. We suggest that neurofilament transport in motor axons consists of multiple successive stages and that each of these stages is carried out by different transport mechanisms. These differences provide a basis for the regional deficiencies in axonal transport associated with several neurological disorders.

Animals↗

Axonal transport of microtubule-associated protein 1B (MAP1B) in the sciatic nerve of adult rat: distinct transport rates of different isoforms.

Cytoskeletal proteins are axonally transported with slow components a and b (SCa and SCb). In peripheral nerves, the transport velocity of SCa, which includes neurofilaments and tubulin, is 1-2 mm/d, whereas SCb, which includes actin, tubulin, and numerous soluble proteins, moves as a heterogeneous wave at 2-4 mm/d. We have shown that two isoforms of microtubule-associated protein 1B (MAP1B), which can be separated on SDS polyacrylamide gels on the basis of differences in their phosphorylation states (band I and band II), were transported at two different rates. All of band I MAP1B moved as a coherent wave at a velocity of 7-9 mm/d, distinct from slow axonal transport components SCa and SCb. Several other proteins were detected within the component that moved at the velocity of 7-9 mm/d, including the leading wave of tubulin and actin. The properties of this component define a distinct fraction of the slow axonal transport that we suggest to term slow component c (SCc). The relatively fast transport of the phosphorylated MAP1B isoform at 7-9 mm/d may account for the high concentration of phosphorylated MAP1B in the distal end of growing axons. In contrast to band I MAP1B, the transport profile of band II was complex and contained components moving with SCa and SCb and a leading edge at SCc. Thus, MAP1B isoforms in different phosphorylation states move with distinct components of slow axonal transport, possibly because of differences in their abilities to associate with other proteins.

Age Factors↗

Retrograde axonal transport of endogenous phospholipids in rat sciatic nerve.

Anterograde axonal transport of phospholipids occurs at a rate of several hundred millimeters per day. However, although labeled precursors are incorporated into phospholipids in the neuronal cell bodies within several hours, these newly synthesized phospholipids are committed to transport over a much longer period of time. Thus, maximal accumulation of radioactive lipids in axons and nerve endings does not occur for several days (e.g., 4 to 7 days in rat optic tract and sciatic nerve). We have now investigated the retrograde axonal transport of endogenous phospholipid molecules in sensory neurons of rat sciatic nerve. Labeled phospholipids were delivered to axons and nerve endings of these cells by anterograde axonal transport following injection of [2-3H] glycerol into the L5 dorsal root ganglion. At various times following precursor injection two ligatures, 9 mm apart, were applied to the mid-thigh region of the sciatic nerve. Animals were sacrificed 3 to 48 hr after nerve ligation, nerves were dissected and sectioned into 5-mm segments, and phospholipid radioactivity in each segment was determined. The time-dependent accumulation of labeled phospholipids distal to the distal ligature demonstrated their retrograde axonal transport. The time course of retrograde transport for these phospholipids was more prolonged and peaked several days later than the time course for the anterograde transport phase. Further information regarding the relationship between radioactive phospholipids arriving at the nerve endings by anterograde transport, and their subsequent "turn-around" and retrograde transport back to the nerve cell bodies, was obtained by analyzing the phospholipid class label distribution of both of these transport phases at various times following precursor injection.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Anterograde axonal transport of peptidylglycine alpha-amidating monooxygenase in rat sciatic nerves.

Axonal transport of peptidylglycine alpha-amidating monooxygenase (PAM) activity was studied in rat sciatic nerves from 12 to 120 h after double ligations. The anterograde axonal transport increased and reached a plateau between 48 and 72 h and then decreased. The flow rate was 100 mm/day, and the molecular mass of the active entity was 70 kDa, which was determined by gel filtration. In contrast, there was no evidence for significant retrograde axonal transport. Anterograde axonal transport of immunoreactive cholecystokinin, a carboxy-terminal-amidated putative neuropeptide, was also found. These results suggest that PAM is transported by a rapid axonal flow and may play a role as a processing enzyme during transport or in the terminals of rat sciatic nerves.

Animals↗

Mechanism of axonal transport: a proposed role for calcium ions.

In vitro axonal transport of tritiated protein decreased 40 to 60 percent when neuronal cell bodies were incubated in calcium-free medium, but was not affected when only nerve trunks were exposed to calcium-free conditions. In addition, calcium-45 was transported along axons at a rate similar to that of rapidly transported tritiated protein. These data are interpreted to suggest that calcium ions are involved in the initiation of axonal transport and in the coupling of transported proteins to the transport system.

Animals↗

Axonal transport dysfunction in dystrophia myotonica.

Axonal transport of acetylcholinesterase (AChE) was measured in the median and sural nerves of a subject who suffered from dystrophia myotonica and in a control subject. It was found that the basal activity of AChE was increased in myotonic nerves while its proximodistal transport was inhibited.

Acetylcholinesterase↗

Orthograde, retrograde, and turnaround axonal transport of dopamine-beta-hydroxylase: response to axonal injury.

Reversal of the direction (turnaround) of orthograde axonal transport of dopamine-beta-hydroxylase (DBH) activity was studied at a ligature placed on rat sciatic nerve. DBH was allowed to accumulate at a ligature in vivo for selected intervals, at which time a second ligature was placed proximal to the first and turnaround transport measured just distal to the second tie after incubation in vivo or in vitro. Orthograde accumulation of DBH activity proximal to a ligature peaked at 2 days, and then rapidly decreased as a result of turnaround transport and injury-induced reduction of orthograde transport. Destruction of postganglionic sympathetic axon terminals in vivo with 6 hydroxydopamine resulted in a decrease in orthograde transport similar to that seen after axotomy and turnaround at or proximal to the site of chemical injury. Turnaround transport of DBH in vitro was blocked by incubation in the cold and in the presence of NaCN and vinblastine. Orthograde transport of DBH appeared to reverse direction within a few millimeters of a ligature.

Afferent Pathways↗

Mesencephalic THmRNA-reduced expression by blocking axonal transport with colchicine.

Colchicine, an axonal transport blocking agent, was unilaterally injected in the medial forebrain bundle of rats. As early as 18 h after the injection a rapid decrease in TH-mRNA level was observed in the substantia nigra and the ventral tegmental area (SN/VTA) on the injected side. In contrast, TH protein levels remained stable for 48 h, and decreased later in both cells bodies and terminals (caudate/putamen). The number of TH-immunopositive cells in SN/VTA increased after colchicine equally in both sides, excluding a neurotoxic effect. These results suggest that TH gene expression is controlled by a retrogradely transported activating factor rather than by feedback inhibition by the end product, i.e. TH protein.

Animals↗

Axonal transport and distribution of cyclophilin A in chicken neurones.

In the course of pulse-label studies on the axonal transport of the small, basic, actin-binding proteins--actin depolymerizing factor, cofilin and profilin--in chicken motor neurones, we observed a heavily labelled protein of M(r) 18 kDa and pI 8.2 on fluorographs of two-dimensional polyacrylamide gels. On the basis of its M(r), pI and amino acid composition, we tentatively identified it by database searching as cyclophilin A and subsequently confirmed its identity by immunostaining. Like actin and its associated proteins, cyclophilin A was transported in slow component b of axonal transport, but unlike these proteins, cyclophilin A did not copurify with actin on DNase I. It was not found amongst labelled proteins transported by fast axonal transported by fast axonal transport. Immunostaining of chicken dorsal root ganglion cells revealed that it accumulated in neurites at points of branching, varicosities and growth cones. Our results raise the possibility that cyclophilin A is important in maintaining the native folding of actin and associated proteins during transit in axons and assembly in growth cones.

Amino Acids↗

C-terminal phosphorylation of the high molecular weight neurofilament subunit correlates with decreased neurofilament axonal transport velocity.

We probed the relationship of NF axonal transport of neurofilaments (NFs) to their phosphorylation state by comparing these parameters in two closely-aged groups of young adult mice - 2 and 5 months of age. This particular time interval was selected since prior studies demonstrate that optic axons have already completed axonal caliber expansion and attained adult NF levels by 2 months but, as shown herein, continue to increase NF-H C-terminal phosphorylation. NF axonal transport was monitored by autoradiographic analysis of the distribution of radiolabeled subunits immunoprecipitated from optic axon segments at intervals following intravitreal injection of 35S-methionine. Both the peak and front of radiolabeled NFs translocated faster in 2- vs. 5-month-old mice. This developmental decline in NF transport rate was not due to reduced incorporation of NFs into the cytoskeleton, nor to an overall decline in slow axonal transport. By excluding or minimizing other factors, these findings support previous conclusions that C-terminal NF phosphorylation regulates NF axonal transport.

Aging↗

Calcium requirement for fast axonal transport in frog motoneurons.

Calcium is required to sustain fast axonal transport in sensory neurons of frog and cat. We studied the Ca2+ dependence of fast axonal transport in the motoneurons of the lower spinal cord from frog. The accumulation of acetylcholinesterase at a crush on the ventral roots was used to follow axonal transport. Two types of experiments were performed: modification of the medium bathing the ventral roots, alone, and modification of the medium bathing the spinal cord and ventral roots. Incubation (17--18 h) of the ventral roots in Ca2+-free medium markedly inhibited acetylcholinesterase transport, a finding that demonstrates a Ca2+ requirement for fast axonal transport in motoneurons; when 4 mM MgCl2 was added to the Ca2+-free medium, transport was also greatly reduced. During incubation of the ventral roots in normal medium supplemented with 0.18 mM CoCl2 transport proceeded normally; but when the Co2+ concentration was raised to 1.8 mM, transport was diminished as drastically as in the Ca2+-free medium. Incubation of the spinal cord and ventral roots in medium containing 0.18 mM CoCl2 did not reduce the accumulation of acetylcholinesterase at the crush. Similarly, accumulation of acetylcholinesterase at a crush on the dorsal root was not significantly reduced by exposure of the dorsal root ganglion and root to 0.18 mM Co2+. Exposure of sensory cell bodies to 0.18 mM Co2+ thus produces differential effects on transport of acetylcholinesterase and on transport of newly synthesized radiolabeled protein.

Acetylcholinesterase↗

Effects of chronic demyelination on axonal transport in experimental allergic optic neuritis.

Axonal transport studies were undertaken to determine the effect of chronic demyelination on axonal function in experimental allergic optic neuritis in the guinea pig, an animal model for multiple sclerosis. Fast and slow components of axonal transport over the prelaminar, laminar, and retrolaminar portions of the optic nerve head and at the foci of demyelination in the retrobulbar optic nerve were evaluated by the autoradiographic grain-counting technique. At 6 hr there was a significant increase in grain counts over the demyelinated foci and in the regions proximal to the demyelination, including the swollen disc. At day 1 there was no significant difference in the grain counts at the site of demyelination when compared to the myelinated portion of the nerve. However, at days 3 and 7 there was a decrease in the number of grains over the demyelinated areas. These results indicate impairment of axonal function in chronic demyelination. Moreover, in this pathologic process, most of the synthesized materials appear to move in the fast transport phase, unlike in the normal optic nerve where the bulk of materials move by slow transport.

Animals↗

Non-invasive in-vivo autoradiographic method to measure axonal transport in serotoninergic neurons in the rat brain.

We studied axonal transport of serotoninergic neurons by autoradiography following intravenous administration of alpha-[14C]methyl-L-tryptophan (alpha-[14C]MTrp). Autoradiograms obtained 24 h after intravenous injection of the tracer demonstrated clearly all raphe nuclei and the major ascending pathway, the medial forebrain bundle (MFB). From these autoradiograms it was clear that radioactivity traveling along the MFB had already reached the substantia nigra and ventrolateral geniculate body nuclei, terminal field. The whole route of the MFB was well visualized from an axial cross-section of a three-dimensional display of data. Autoradiograms obtained at 6 h after injection revealed only the caudal part of the MFB but all raphe nuclei were labelled, indicating that the tracer was in the process of being transported, probably as an alpha-methyl-5-hydroxytryptamine, via the MFB. The axonal transport rate was estimated from the brain autoradiograms of 4 rats killed 6 h after injection of the tracer. The mean distance of the tracer transported via the medial forebrain bundle in 4 rats was 3.8 +/- 0.4 (S.D.) mm, which corresponded to the level of the posterior to mid-hypothalamus. The axonal transport rate calculated from this distance from the medial raphe was 0.63 +/- 0.07 mm/h (14 mm/day). There was no significant difference in the axonal transport rate between the right and left side of the MFB.

Animals↗