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Development of the chick olfactory nerve.

Gonadotropin releasing hormone (GnRH) is produced and secreted by neurons dispersed throughout the septal-preoptic and anterior hypothalamic areas in adult birds and mammals. These neurons, essential for a functional brain-pituitary-gonadal axis, differentiate in the olfactory placode, the superior aspect of which forms the olfactory epithelium. To reach their final placement within the brain, GnRH neurons migrate out of the epithelium and along the olfactory nerve to the CNS. This nerve is essential for the entrance of GnRH neurons into the CNS. Due to the importance of the nerve for the proper migration of these neurons, we have used immunocytochemistry, DiI labeling and 1 microm serial plastic-embedded sections to characterize the nerve's earliest development in the embryonic chick (stages 17-21). Initially (stage 17) the zone between the placode and prosencephalon is a cellular mass contiguous with the placode. This cluster, known as epithelioid cells, is positive for some but not all neuronal markers studied. The epithelium itself is negative for all neuronal and glial markers at this early stage. By stage 18, the first neurites emerge from the epithelium; this was confirmed at stage 19 by examination of serial 1 microm plastic sections. There is sequential acquisition of immunoreactivity to neuronal markers from stage 18 to 21. The glial component of the nerve appears at stage 21. Axons originating from epithelium, extend to the border of the CNS as confirmed by DiI labeling at stage 21. Small fascicles have entered the CNS at this stage. As previously reported, GnRH neurons begin their migration between stages 20-21 and have also arrived at the border of the brain at stage 21. Despite the penetration of neurites from the olfactory nerve into the CNS, GnRH neurons pause at the nerve-brain junction until stage 29 (2 1/2 days later) before entering the brain. Subsequent studies will examine the nature of the impediment to continued GnRH neuronal migration.

Acetylcholinesterase↗

The characteristics of the electro-olfactogram (EOG): its loss and recovery following olfactory nerve section in rainbow trout (Salmo gairdneri).

Electro-olfactograms (EOGs) were recorded from both sensory and non-sensory epithelia on the olfactory lamellae and from other areas within the rosette of rainbow trout (Salmo gairdneri). The trout EOG induced by amino acids was a monophasic negative voltage composed of a phasic component which declined to a steady level (tonic component) that was maintained throughout stimulus duration. The time period (2 min) for complete recovery of the EOG was obtained by applying two identical stimuli (10(-5) mol/liter L-serine for 5 s) successively at increasing intervals. EOG response to amino acids increased nearly exponentially with concentration and no saturation was reached. Gradual deterioration of olfactory receptor cells occurred within 14 days after olfactory nerve section (axotomy) as indicated by phospholipid staining. Regeneration of the receptor cells started at 56 days postaxotomy, reached approximately normal density and the elongate form of mature neurons at 84 days. In axotomized fish the magnitude of EOG response decreased relative to the controls at 7 days with minimal sensitivity between 14 and 28 days postaxotomy. EOGs were not evoked by L-serine nor L-leucine in most fish 17-22 days postaxotomy. Restoration of the EOG response coincided with morphological repopulation of receptor neurons after 84 days. EOG recovery was only 50% of the control values at 230 days. The EOG responses evoked by HCl in sensory and non-sensory epithelia were indistinguishable from each other, indicating that receptor neurons are not likely to be their primary origin.

Amino Acids↗

Olfactory ensheathing cells, olfactory nerve fibroblasts and biomatrices to promote long-distance axon regrowth and functional recovery in the dorsally hemisected adult rat spinal cord.

Cellular transplantation, including olfactory ensheathing cells (OEC) and olfactory nerve fibroblasts (ONF), after experimental spinal cord injury in the rat has previously resulted in regrowth of severed corticospinal (CS) axons across small lesion gaps and partial functional recovery. In order to stimulate CS axon regrowth across large lesion gaps, we used a multifactorial transplantation strategy to create an OEC/ONF continuum in spinal cords with a 2-mm-long dorsal hemisection lesion gap. This strategy involved the use of aligned OEC/ONF-poly(D,L)-lactide biomatrix bridges within the lesion gap and OEC/ONF injections at 1 mm rostral and caudal to the lesion gap. In order to test the effects of this complete strategy, control animals only received injections with culture medium rostral and caudal to the lesion gap. Anatomically, our multifactorial intervention resulted in an enhanced presence of injured CS axons directly rostral to the lesion gap (65.0 +/- 12.8% in transplanted animals versus 13.1 +/- 3.9% in control animals). No regrowth of these axons was observed through the lesion site, which may be related to a lack of OEC/ONF survival on the biomatrices. Furthermore, a 10-fold increase of neurofilament-positive axon ingrowth into the lesion site as compared to untreated control animals was observed. With the use of quantitative gait analysis, a modest recovery in stride length and swing speed of the hind limbs was observed. Although multifactorial strategies may be needed to stimulate repair of large spinal lesion gaps, we conclude that the combined use of OEC/ONF and poly(D,L)-lactide biomatrices is rather limited.

Animals↗

Characterization of axonally transported glycoproteins in regenerating garfish olfactory nerve.

This study examined changes in composition and concanavalin A (Con A) binding of axonally transported glycoproteins and their pronase-generated glycopeptides in regenerating garfish olfactory nerve. A previous study had demonstrated a regeneration-related increase in the proportion of [3H]glucosamine label in lower-molecular-weight Con A-binding glycopeptides derived from transported glycoproteins. Further analysis of carbohydrate composition shows that these molecules resemble mannose-rich oligosaccharides in composition and are increased in absolute amount in regenerating nerve. Subcellular analysis shows that the Con A-binding glycopeptides are enriched in membrane subfractions, particularly in a high-density fraction that morphologically resembles isolated cell surface coat. Regeneration-related changes in intact axonally transported glycoproteins were also detected. Sodium dodecyl sulfate gel electrophoresis of transport-labeled glycoproteins disclosed growth-correlated increases in radioactivity associated with 180-200K, 105-115K, and 80-90K components, while a 150-160K molecular weight class of glycoproteins was diminished in relative labeling. Intact glycoproteins displaying an affinity for Con A were also augmented in regenerating nerve, the increases occurring primarily in molecules in the 50-140K range.

Animals↗

Axonal transport of glycoproteins in regenerating olfactory nerve: enhanced glycopeptide concanavalin A-binding.

The size and concanavalin A-binding characteristics of glycopeptides derived from axonally transported glycoproteins were studied in regenerating garfish olfactory nerve. A regeneration related increase was observed in the proportion of total glycopeptide radioactivity associated with the lower molecular weight, dialyzable fraction. There was also a 3-5 fold increase in the axonal transport of low molecular weight concanavalin. A-binding glycopeptides in regenerating nerve. These results suggest a shift to an enhanced synthesis and axonal transport of glycoproteins containing low molecular weight, concanavalin A-binding carbohydrate chains in regenerating nerve.

Animals↗

Distribution of calmodulin, calbindin-D28k and calretinin among rat olfactory nerve bundles.

Calmodulin, calbindin-D28k and calretinin are calcium-binding proteins largely distributed in the bipolar olfactory receptor cells. In the olfactory epithelium their distribution seemed to be random. Using immunohistochemistry we have examined their localization in rat olfactory axons extending to the olfactory bulb. Sections were analyzed both horizontally and vertically. Almost all fibers were immunoreactive for one of the three intracellular calcium-binding proteins whose distribution was not random among the bundles. Three different subclasses of fibers could be detected: calbindin-D28k and calretinin immunoreactivities were restricted to external fibers whereas calmodulin immunoreactivity was intense, abundant and largely distributed throughout the internal portion of the olfactory nerve. This additional degree of organization detected in the olfactory axons might play a role in odor discrimination.

Animals↗

Spread of a neurotropic murine coronavirus into the CNS via the trigeminal and olfactory nerves.

The route of entry into the central nervous system (CNS) of most neurtropic viruses has not been established. The coronavirus, mouse hepatitis virus strain JHM (MHV-JHM), causes acute encephalomyelitis and acute and chronic demyelinating diseases and is an important model system for virus-induced neurological disease. Suckling C57BL/6 mice infected intranasally with MHV-JHM develop either the acute encephalomyelitis or a late onset, symptomatic demyelinating encephalomyelitis, depending on whether they are nursed by unimmunized or immunized dams. Analysis by in situ hybridization was used to determine the route of entry of MHV-JHM into the CNS in these mice. At early times, viral RNA was detected only in the trigeminal and olfactory nerves and in their immediate connections in all mice. A few days later, MHV-JHM RNA was found throughout the brain in mice dying of the acute encephalomyelitis, but remained confined to the entry sites in mice which did not develop acute disease. These results suggest that MHV-JHM enters the CNS via an interneuronal route in all mice, but that the presence of maternal antibody prevents the dissemination of virus via extracellular fluid. In addition, MHV-JHM may establish low-level persistence in the trigeminal or olfactory nerve or in one of its connections in mice that do not develop acute encephalomyelitis.

Acute Disease↗

Rate of movement and composition of rapidly transported proteins in regenerating olfactory nerve.

In a previous study, three successive groups of regenerative fibers, growing initially at 5.8, 2.1, and 0.8 mm/day, were observed in the regenerating garfish olfactory nerve. In the present study, fast axonal transport in the most rapidly regenerating axons (phase I and II) has been examined. Rapid transport in phase I fibers occurs at a velocity of 208 +/- 9 mm/day at 23 degrees, a rate identical to that measured in intact nerves. This first phase of regenerating fibers represents only 3 to 5% of the original axonal population, but each fiber appears to contain 6 to 16 times more transported radioactivity than an axon in an intact nerve. Subcellular distribution of rapidly moving material in phase I and II fibers was closely related to the distribution obtained in intact nerves. Small but significant differences indicate a shift of the transported radioactivity from a heavier to a light axonal membranous fraction. This shift might be characteristic of the immature membrane of a growing axon. The polypeptide distribution of transported radioactivity was also very similar to that of a normal nerve, with most of the radioactivity associated with high-molecular-weight polypeptides.

Animals↗

[Electro-olfactogram after unilateral section of the olfactory nerve in the frog].

Changes in the amplitude of electroolfactogramm (EOG) after unilateral section of the olfactory nerve has been investigated in Rana temporaria. The EOG decreased during the first postoperative fortnight, but there was not a single case of complete disappearance of EOG at all recording sites on the epithelial surface. The EOG amplitude began increasing gradually towards the end of the third week and was about 80-100% of the control value in the middle of the tenth week. The amplitude of the EOG recorded in the contralateral olfactory organ decreased too, but its decrease was less pronounced and the complete recovery of the EOG amplitude occurred earlier. The character of changes and maximum decrease of the EOG amplitude after axotomy varied in different parts of the olfactory organ. In the caudo-lateral region of the organ the EOG amplitude decreased earlier and its recovery here began later than in the centro-medial one.

Animals↗

Olfactory nerve stimulation activates rat mitral cells via NMDA and non-NMDA receptors in vitro.

The neurotransmitter(s) and receptors mediating excitatory transmission at the mammalian olfactory nerve-mitral cell synapse were investigated using extracellular recordings in rat olfactory bulb slices. Single shocks applied to the olfactory nerve elicited both a short latency and a delayed excitatory response in mitral cells. Both responses were blocked after bath application of kynurenic acid, a broad-spectrum glutamate receptor antagonist, or DNQX, a preferential non-NMDA receptor antagonist. The specific NMDA receptor antagonist AP5 selectively attenuated the delayed, but not the initial excitation. These results suggest that glutamate is the major excitatory transmitter in the mammalian olfactory nerve, and excites mitral cells via NMDA and non-NMDA receptors.

2-Amino-5-phosphonovalerate↗

Schwann cells of the olfactory nerves contain glial fibrillary acidic protein and resemble astrocytes.

Two antisera to glial fibrillary acidic protein from human brain and an antiserum to a 49 k dalton glial filament protein from human brain detected a cross-reacting antigen in the Schwann cells of the olfactory and vomeronasal nerves. The antigen was demonstrated at light- and electron-microscope levels. It was found throughout the cytoplasm and in association with cytoplasmic filaments of olfactory nerve Schwann cells in intact tissue and in Schwann cells grown in vitro. This observation, together with observations on the ultrastructure of olfactory nerve Schwann cells, relates them to central astroglia and to glial cells of the myenteric plexus, rather than to Schwann cells of other peripheral nerves. The unusual properties of olfactory nerve Schwann cells are of interest in relation to the regenerative abilities of the olfactory nerves.

Animals↗

Structure of intraglomerular dendritic tufts of mitral cells and their contacts with olfactory nerve terminals and calbindin-immunoreactive type 2 periglomerular neurons.

Intraglomerular dendritic tufts of Golgi-impregnated and biotinylated dextran amine (BDA)-labeled mitral cells in the rat main olfactory bulb were analyzed in detail. In particular, the relationships of BDA-labeled tufts with olfactory nerve (ON) terminals and processes of calbindin D-28K-immunoreactive (CB-IR) cells were investigated with confocal laser-scanning light microscopic (CLSM) and electron microscopic (EM) analyses. CB-IR cells were type 2 periglomerular cells that restricted their processes in the ON-free (non-ON) zone of the glomerulus and received few synapses from ON terminals. The mitral tufts varied in complexity, but individual branches were rather simple, smooth processes that bore some branchlets and spines and extended more or less in a straight line or a gentle curve rather than winding tortuously within glomeruli as though they did not consider the compartmental organization, which consisted of ON and non-ON zones that interdigitated in a complex manner with one another. Conventional EM analysis revealed that both thin and thick, presumed proximal branches of mitral/tufted cell dendritic tufts received asymmetrical synapses from ON terminals. Correlated CLSM-EM analysis confirmed direct contacts between the BDA- and CB-labeled processes detected in the CLSM examinations, and synapses were recognized at some of those sites. Furthermore, ON terminals and CB-IR processes were distributed on both proximal and distal dendritic branches in a more or less mosaic pattern. These findings revealed that, on the mitral dendritic tufts, ON terminals and processes of type 2 periglomerular neurons were not clearly segregated proximodistally but, rather, were arranged in a mosaic pattern, which may be important in fine tuning the output from individual glomeruli.

Animals↗

The olfactory nerve and not the trigeminal nerve is the major site of CNS entry for mouse hepatitis virus, strain JHM.

Several viruses, including mouse hepatitis virus strain JHM (MHV-JHM), enter the brain after intranasal inoculation and spread transneuronally to other parts of the central nervous system (CNS). Both the olfactory and trigeminal nerves innervate the nasal cavity and are potential portals of virus entry into the CNS. To evaluate the relative importance of each nerve for MHV infection, mice were infected under conditions that discriminated between trigeminal and olfactory nerve entry. When olfactory nerve entry was selectively eliminated by surgical removal of both olfactory bulbs or by chemical destruction of the olfactory epithelium, MHV-JHM spread into the CNS was completely prevented. On the other hand, direct inoculation into the olfactory bulb, which eliminates all entry via the trigeminal nerve, had no effect on the pattern of virus infection. Thus MHV-JHM enters the CNS via the olfactory nerve after intranasal inoculation while entry via the trigeminal nerve is an insignificant part of this process.

Animals↗

Spontaneous immortalisation of ensheathing cells from adult rat olfactory nerve.

In this report, we describe the isolation of a cell line, Rolf B1.T, from cultures of adult rat olfactory nerve cells. Rolf B1.T cells have an antigenic phenotype which closely resembles that of olfactory ensheathing cells. In routine culture conditions, Rolf B1.T cells constitutively express glial fibrillary acidic protein, S1OO, the low-affinity neurotrophin receptor p75 NGF, laminin, tenascin, and the neural cell adhesion molecule (N-CAM); a variable proportion of the cells also express cadherin, which is regulated by local culture conditions and is associated positively with cell proliferation status. We provide evidence that the association may be indirect and linked to a related parameter such as local cell density. Rolf B1.T cells arose from a population of less well-differentiated cells after a spontaneous immortalisation event. The cells retain many characteristics of normal cells, are dependent on serum growth factors for their proliferation, and fail to grow in semi-solid agar. Rolf B1.T cells support the regrowth of neurites from adult retinal ganglion cells in vitro in a heterologous co-culture system and will have potential value in investigations into the mechanisms of glial support for axonal regeneration from adult mammalian central neurons.

Animals↗

Distribution along the axon and into various subcellular fractions of molecules labeled with (3H)leucine and rapidly transported in the garfish olfactory nerve.

The distribution of molecules labeled with [3H]leucine by fast axoplasmic transport in vivo has been studied in the garfish olfactory nerve after incorporation of the amino acid by the olfactory mucosa. Owing to the size of the nerve, it has been possible to follow the fate of the labeled molecules in 10 different subcellular fractions of 6 consecutive nerve segments. Each segment represents a different part of the profile developed by the transported radioactive molecules. In order to determine the influence of the perikaryon (rate of protein synthesis and rate of protein release into the axon) transport was studied under 3 different conditions: (1) intact nerves (simply labeled with [3H]leucine); (2) nerves cut from the cell bodies 6 h after application of [3H]leucine; and (3) nerves pulse-chase labeled for 1 h. Several conclusions can be drawn. (1) The bulk of the rapidly transported molecules are membranous axonal proteins, as determined by enzyme markers. Most are found in subcellular fractions representing 17% of the total axonal protein. They are synthesized very rapidly in the cell bodies (less than 1 h after isotope deposition) and exhibit the highest specific activities measured. These high specific activities were found in the same axonal membrane fractions in both plateau and crest, suggesting that the membrane precursors are transported as particles rather than as subunits. (2) The majority of these proteins are released into the axon immediately after synthesis; however, at least 30% of the labeled axonal membranous proteins are not released with the fast wave itself but progressively over a long period of time. (3) The majority of the moving material, particularly in membranous fractions, is left behind the fast wave and is deposited in the axon. When the front base of the fast wve has covered 70% of the total nerve length, only 19% of the labeled material of the main axonal membranous fraction appears still to be moving. (4) Proteins with high specific activities are found near the cell bodies and may be the result of early axonal transport of amino acids, diffusing later into the surrounding cells and being incorporated into proteins. Some free amino acids are also transported along the axon.

Acetylcholinesterase↗

Fast regeneration of the olfactory nerve in goldfish: fine structure and behaviour.

Normal olfaction-guided behaviour in goldfish returns surprisingly fast after bilateral transection of the olfactory nerve (ON). In order to find correlation between morphological changes and behaviour we performed parallel studies on the behaviour of the fish and the ultrastructure of the olfactory bulb in axotomised fish. Signs of degeneration were most prominent between the 4th and 6th day post-operatively. First appearance of regenerated ON fibres and terminals was noted on the 10th post-operative day. ON terminals became frequent again two weeks after the operation. This supports earlier suppositions that morphological regeneration plays a crucial role in the fast and complete restoration of olfaction-guided behaviour.

Animals↗

A new method for labelling saxitoxin and its binding to non-myelinated fibres of the rabbit vagus, lobster walking leg, and garfish olfactory nerves.

1. A new method of labelling saxitoxin (STX) is described, based on transfer of tritium from tritiated water to the toxin. 2. The radiochemical purity of the labelled toxin has been directly determined, rather than being based on indirect biochemical means, as in previous experiments with Wilzbach-labelled STX and TTX. 3. The specific activity of the labelled toxin, 66 d..m.f-mole-1, corresponds with one tritium atom per molecule STX, an improvement of about 300-fold over other means of labelling TTX and STX. 4. The binding of this toxin to rabbit, lobster and garfish olfactory nerve fibres has been re-examined. 5. The density of sodium channels calculated on the basis of the binding of the toxin is about four to six-times the values previously reported.

Animals↗

Olfactory stimulation variables. Which model best predicts the olfactory nerve response?

Mozell et al. (1984. J. Gen. Physiol. 83:233-267) have examined the traditional manner in which olfactory stimulus-response relationships have been addressed. They developed a model that describes the olfactory nerve response as a function of three factors, viz., the number of odorant molecules (N), the stimulus duration (T), and the stimulus volume (V). In addition, two models derived from this three-variable model were also found to predict the response well. These were the [F, N] model involving flow rate (F = V/T) and, ranking closely behind, the [C, T] model involving concentration (C = N/V). A model involving the delivery rate (D = N/T) and volume was found to predict the response poorly. These models imply very different stimulus-response relationships. The present study was designed to assess the validity of this earlier approach by testing specific predictions drawn from each of the models. Because of the excellence of the [F, N] model, one would predict that the response will not change when F and N are held constant in spite of proportional increases in V and T. Similarly, one would predict from the [C, T] model that the response will be constant when C and T are held constant in spite of proportional increases in N and V. Because of the poor showing of the [D, V] model, one would predict changes in the response even when D and V are held constant while N and T are increased proportionately. It was observed that when F and N were held constant, the response was, in fact, constant. When D and V were held constant, the response increased dramatically. When C and T were held constant, there was a statistically significant, but small, change in the response. These results support the approach taken by Mozell et al. (op. cit.) and highlight the applicability of the [F, N] model to peripheral olfactory processing. The results are discussed in terms of their impact on the traditional manner in which olfactory stimulus-response relationships are conceived.

Animals↗