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Biomedical subjects

A Mackay-Sim

Publications and source records attributed to A Mackay-Sim.

At least 37 records · Page 2Linked to original sources

Olfactory neuronal cell lines generated by retroviral insertion of the n-myc oncogene display different developmental phenotypes.

Being genetically homogeneous, clonal cell lines are potentially important for investigating many aspects of cellular differentiation. We describe here the creation of clonal cell lines by immortalization of neuronal precursor cells from the adult mouse olfactory epithelium. Unlike neurons elsewhere in the vertebrate nervous system, the olfactory sensory neuron can be replaced throughout the lifespan of the animal. However, little is known about the molecular aspects of olfactory neurogenesis. Continuous cell lines were generated by retroviral transduction of the n-myc proto-oncogene into the mitotically active basal cells of the olfactory epithelium which give rise to the sensory neuron. Twenty-one clonal cell lines were produced which could be divided into three distinct morphological classes: one with flat, epithelial-like cells only; another with round, flat, and bipolar cells; and a third with large flat and large bipolar cells. These morphological classes had different patterns of intermediate filament expression, as shown by immunocytochemistry and immunoblot analysis. All cells in all cell lines expressed the intermediate filament protein vimentin. Most bipolar cells, but not other cell types, expressed neurofilament protein and in one morphological class the bipolar cells co-expressed neurofilament and glial fibrillary acidic protein. Several cell lines expressed mRNA for OMP, a marker of mature olfactory sensory neurons, and GOLF, a guanine nucleotide binding protein involved in olfactory sensory transduction. It is concluded that these cell lines were immortalized from sensory neuron precursors late in the lineage pathway. Other cell lines appear to have been immortalized at earlier stages in the lineage pathway. These cell lines therefore provide useful tools for the investigation of neuronal differentiation and sensory transduction in the olfactory epithelium.

Animals↗

Neurogenesis in adult human.

This report describes neurogenesis in the adult human olfactory epithelium in vitro. Olfactory epithelium was collected at autopsy and by biopsy, and grown in serum-free medium. Basic fibroblast growth factor induced the differentiation of bipolar cells which were immunopositive for several neuronal proteins but not glial proteins. [3H]thymidine autoradiography confirmed that these neurones were born in vitro. The results demonstrate that the adult human olfactory epithelium retains the capacity for neurogenesis and neuronal differentiation, at least until the age of 72 years. It is now possible to examine neurones and neurogenesis in biopsies from patients with disorders that may involve a neurodevelopmental or neurodegenerative aetiology such as schizophrenia, bipolar disorder and Alzheimer's disease.

Adolescent↗

FGF2 promotes neuronal differentiation in explant cultures of adult and embryonic mouse olfactory epithelium.

Neurogenesis in the adult olfactory epithelium is highly regulated in vivo. Little is known of the molecular signals which control this process, although contact with the olfactory bulb or with astrocytes has been implicated. Explants of mouse olfactory epithelium were grown in the presence or absence of several peptide growth factors. Basic fibroblast growth factor (FGF2) stimulated differentiation of sensory neurons in adult and embryonic olfactory epithelium. Other growth factors tested were ineffective. FGF2-stimulated neurons were born in vitro and expressed neurofilament, neural cell adhesion molecule, and beta-tubulin. The cells also expressed olfactory marker protein, a marker for mature olfactory sensory neurons in vivo. These bipolar neurons did not express glial fibrillary acidic protein or low-affinity nerve growth factor receptor. These results indicate that neither astrocytes nor olfactory bulb are necessary for differentiation of olfactory sensory neurons in vitro.

Animals↗

Development of voltage-dependent currents in taste receptor cells.

Taste buds, the specialized end organs of gustation, comprise a renewing sensory epithelium. Undifferentiated basal cells become taste receptor cells by elongating and extending processes apically toward the taste pore. Mature taste cells are electrically excitable and express voltage-dependent Na+ Ca2+, and K+ currents, whereas basal stem cells exhibit only slowly activating K+ currents. The question we have addressed in the present study is whether contact with the taste pore is required for expression of voltage-dependent inward currents in Necturus taste cells. Mature taste cells were distinguished from developing cells by labeling the apical surface of the cells with fluorescein-isothiocyanate-conjugated wheat germ agglutinin (FITC-WGA), while the tissue was still intact. Elongate cells lacking FITC-WGA staining were interpreted as developing taste cells that had not yet reached the taste pore. Giga-seal whole-cell recording revealed that most developing taste cells lacked inward currents. Although some developing cells expressed inward currents, they were much smaller than those of mature cells, and the activation kinetics of the K+ currents were slower than in mature cells. Electron microscopy confirmed the identity of labeled and unlabeled cells. All FITC-WGA-labeled cells exhibited the ultrastructural characteristics of mature taste receptor cells, whereas most unlabeled taste cells had a characteristic morphology that was markedly different from mature taste receptor cells or basal stem cells. These data suggest that contact with the taste pore is required for the development of inward currents in taste cells.

Animals↗

Odor detection performance in hypothyroid and euthyroid rats.

The influence of hypothyroidism on the odor detection ability of male Long-Evans rats was determined using high-precision olfactometry and a go/no-go operant task. Nonparametric signal detection measures of sensitivity and responsitivity, as well as measures of S+ response latency, the number of aborted trials, and session time were obtained in daily 200-trial test sessions prior to, during, and after 50 days of maintenance on 0.1% propylthiouracil (PTU). Similar determinations were made in control animals. Neither odor detection nor associated nonsensory performance measures were influenced by hypothyroidism. These results suggest that PTU-induced hypothyroidism does not affect the odor detection performance of rats.

Animals↗

Topographic patterns of responsiveness to odorants in the rat olfactory epithelium.

1. Regional differences in odorant-induced responsiveness of the rat olfactory epithelium were measured via electrophysiological recordings [negative component of electro-olfactogram (Veog(-)) made from the surface of the olfactory epithelium on the nasal septum]. The nasal septum provided a flat surface from which multiple recordings could be made. 2. Veog(-)s were recorded from a standardized grid of 16 sites. This grid of recording sites extended over most of the surface of the olfactory epithelium on the nasal septum. 3. Twenty-one animals were tested for their responses to seven odorants. The animals were divided into three groups, each of which was tested with two different odorants plus amyl acetate, which provided a comparison between the groups. 4. For each odorant in each animal, topographic maps of relative responsiveness were derived to test whether odorants elicited different patterns of responses in the same individual. Topographic maps of responsiveness were derived also for the animal groups to test for the generality of the form of the maps for different odorants. Response latencies were also measured for each odorant at each recording site. 5. All individuals showed different topographic patterns of responses to the three test odorants. For most odorants, the location of the most responsive site was similar in all animals. In different animals the topographic maps for the same odorant were remarkably similar. Topographic maps for the odorants were all different from one another. 6. These results are consistent with the hypothesis that odorant quality is encoded in the differential spatial distribution of receptor cells whose differences in responsiveness appear to be distributed as a continuum across the epithelium. The results establish for a mammalian species what was previously reported in amphibians. These differences are presumed to be due to differential expression of odorant receptor proteins. 7. The mean response latency was 32 ms. This period was similar for all odorants, all animals, and all recording sites and was independent of Veog(-) amplitude. It is concluded that diffusion through the mucus contributed approximately 6 ms to the latency of onset of the responses to these odorants.

Animals↗

Membrane properties of two types of basal cells in Necturus taste buds.

Necturus taste buds contain two types of basal cells: presumptive stem cells and Merkel-like basal cells. Both types of basal cells are small round cells located at the base of the taste bud, indistinguishable from each other with light microscopy. However, with electron microscopy, autoradiography, or immunocytochemistry, these two types of basal cells can be easily distinguished. We isolated basal cells from taste buds, characterized their voltage-dependent currents using gigaseal whole-cell recordings, and processed the cells for electron microscopy or immunocytochemistry. We were able to distinguish two cell types electrophysiologically and to correlate cell type with membrane properties. Isolated Merkel-like basal cells had several voltage-activated currents: transient, TTX-sensitive, inward Na+ current; sustained, saturating outward K+ current; and slowly inactivating inward Ca2+ current. These currents are similar to those observed in taste receptor cells. In contrast, presumptive stem cells from Necturus taste buds only had outward K+ currents.

Animals↗

Cell dynamics in the adult mouse olfactory epithelium: a quantitative autoradiographic study.

The dynamics of cell genesis in the olfactory epithelium of the adult mouse were investigated using 3H-thymidine autoradiography. Mice were injected once with 3H-thymidine, and their olfactory epithelia were examined 7, 14, 30, 60, and 90 d later. The number of silver grains over each nucleus was counted, and the relative distance from the basement membrane was measured for each labeled nucleus. At 7 and 14 d, the average number of labeled cells in each section was about 20 per mm. By 30 d, and for the following 60 d, the average number of labeled cells was only about 6 per mm. Thus, most cells labeled by the injection died 2-4 weeks after injection. When the labeled cells were compared by nuclear grain density, time after injection (the "survival period"), and distance of the nucleus from the basement membrane (the "migration distance"), it was apparent that there was a small population of "nonmigrating" cells that remained close to the basement membrane. These cells, at first heavily labeled, divided a second time about 60 d after the 3H-thymidine injection, indicated by a significant decrease in nuclear grain density. This nonmigrating, slowly dividing basal cell is probably the neural stem cell, which gives rise to another stem cell and an olfactory neuron precursor by an asymmetric division. When the relative numbers of nonmigrating and migrating cells were compared, the results indicated that, after the asymmetric division, there are at least 2 or 3 rapid, symmetric divisions of the precursor cells, producing many immature receptor cells. Most of these die within 4 weeks of the 3H-thymidine injection.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Olfactory function in zinc-deficient adult mice.

Adult zinc deficiency reportedly leads to degeneration of the olfactory epithelium in the rat. Human zinc deficiency can cause reduced olfactory sensitivity. Given the importance of zinc in embryonic neural development its primary action on the adult olfactory system may be to disrupt olfactory receptor neurogenesis. We report here on the effects of zinc deficiency on the olfactory system of the adult mouse. After 42 days of dietary restriction of zinc, mice were tested behaviourally for olfactory function and general activity. Their olfactory epithelia were examined histologically using [3H]-thymidine autoradiography to identify recently-divided cells, and immunohistochemistry for olfactory marker protein to identify mature receptor neurones. Zinc deficient mice failed to show a food odour preference but they were as active as controls and their olfactory epithelia appeared normal. Basal cell proliferation and post-mitotic survival were similar to controls and the epithelia were of normal thickness and were positive for olfactory marker protein. It was concluded that zinc deficiency did not affect the turnover of cells in the olfactory epithelium. It may disrupt olfactory function through interference with zinc-containing neurones in higher olfactory centres.

Age Factors↗

Cell dynamics in the olfactory epithelium of the tiger salamander: a morphometric analysis.

The factors controlling neurogenesis and differentiation of olfactory receptor cells in adults are poorly understood, although it is often stated that these cells undergo continual turnover after a predetermined lifespan. An interesting model in which to study mechanisms which control olfactory receptor neurogenesis and cell turnover is the tiger salamander, since basal cell mitosis varies with epithelial thickness and location in the nasal cavity. This paper presents a quantitative light-microscopic study of the different cell types within the ventral olfactory epithelium of the tiger salamander using a computer-assisted morphometric analysis of 2 micron sections. The results show that the surface density of olfactory vesicles remained constant throughout most of the epithelium and was independent of nasal cavity location, epithelial thickness and the total number of nuclei per unit epithelial surface area. Histological classification of nuclei into different cell types indicated that the increase in total cell number with epithelial thickness was mainly due to an increase in the number of immature receptor cells since the number of supporting cells varied only slightly and the numbers of basal cells and mature receptor cells remained constant except in the thinnest, most caudally located epithelium. It is concluded that the rate of maturation of receptor cells may be limited by an optimal surface density of olfactory vesicles. That is, when this density reaches 4.5 x 10(4) vesicles per mm2 there is a physical or chemical mechanism which prevents the final maturation of newly developing receptor cells, leading to their accumulation. This mechanism may also account for the variations in basal cell mitosis in this species.

Animals↗

Loss of sense of smell in adult, hypothyroid mice.

Adult hypothyroid humans can lose their sense of smell. The present study was designed to investigate whether anosmia follows hypothyroidism in mice. If so, this would provide an animal model in which to study the mechanism for this effect. Adult mice were made hypothyroid with propylthiouracil (PTU) in their drinking water. Their sense of smell was tested before and after treatment by measuring the amount of time they spent sniffing food vs water odours, after a 24-h fast. Thyroid function was assessed histologically or by radioimmunoassay of blood serum for free thyroxine or free triiodothyronine. In Expt. 1 mice treated for 50 days with PTU were hypothyroid and anosmic. Control, euthyroid mice maintained their sense of smell, as did PTU-treated mice which also received daily thyroxine injections. PTU-induced anosmia was reversible: 50 days after removal of treatment previously anosmic mice were euthyroid and had regained their sense of smell (Expt. 3). It was possible that hypothyroidism induced non-specific effects which indirectly affected the olfactory function tests. However, short-term treatment with PTU caused severe hypothyroidism but no anosmia (Expt. 2). Additionally, non-specific effects of hypothyroidism were examined in open-field activity tests after short- and long-term hypothyroidism: euthyroid and hypothyroid animals were similarly active (Expts. 1 and 2). We conclude that chronic hypothyroidism produces anosmia in mice, as it does in humans. This anosmia is prevented by daily injections of thyroxine, and the sense of smell can recover to normal once thyroid function is restored.

Animals↗

Hypothyroidism disrupts neural development in the olfactory epithelium of adult mice.

Adult mice made hypothyroid with propylthiouracil (PTU) lose their sense of smell. This is prevented by daily administration of thyroxine. As thyroxine is necessary for the correct development of the nervous system it may also be necessary for the genesis of new olfactory receptor neurones, a process that continues into adulthood. Adult mice were treated with PTU, injected with [3H]thymidine after 54 days and killed 5 or 15 days later. Microscopic analysis of the olfactory epithelium after autoradiography revealed similar numbers of labelled nuclei in the basal cell layer of the olfactory epithelia of Control and Hypothyroid mice 5 days after injection with [3H]thymidine. This indicated similar rates of basal cell division in the two groups. Fifteen days after [3H]thymidine injection, however, there were fewer labelled nuclei in the receptor cell layer of Hypothyroid mice and the olfactory epithelium was thinner than in Controls. Thyroxine therapy which reversed PTU-induced anosmia also reversed the epithelial effects of PTU treatment. Somewhat unexpectedly, there were no differences between the treatment groups in the average diameter of glomeruli in the olfactory bulb, and no differences in the expression of olfactory marker protein. The results indicate that although hypothyroidism disrupts neural development in the olfactory epithelium, it does not lead to a complete loss of mature receptor neurones.

Animals↗

Cocaine inhibits extraneuronal O-methylation of exogenous norepinephrine in nasal and oral tissues of the rabbit.

Nasal mucosa (respiratory and olfactory) and lingual gingiva of the rabbit were depleted of their sympathetic nerves by superior cervical ganglionectomy. In the innervated nasal mucosa, exogenous tritiated norepinephrine (3H-NE) was metabolised mainly to tritiated 3,4-dihydroxyphenylethylene glycol (3HDOPEG) and 3,4-dihydroxy mandelic acid (3HDOMA), whereas after denervation it was metabolised mainly to tritiated normetanephrine (3HNMN). In the denervated mucosa, cocaine (30 umol/1) inhibited 3HNMN formation by 50-60%. Cocaine also inhibited 3HNMN formation by 60% in the denervated lingual gingiva. It is concluded that the tissues metabolise 3H-NE via a cocaine-sensitive extraneuronal uptake and O-methylating system similar to that which has been shown to be present in dental pulp.

Animals↗

Prolonged odor exposure causes severe cell shrinkage in the adult rat olfactory bulb.

Adult sensory systems generally remain viable as long as stimulation or disease do not physically damage the sensors. Continuous exposure of adult rats to a single odor for two months, however, caused a shrinkage of mitral cells in the olfactory bulb which was more extensive and severe than found in adult rats exposed to deodorized air, or normal rat colony odors. The results suggest that lack of excitation of mitral cells may cause significant shrinkage (deodorized air treatment), but more severe shrinkage may occur through inhibition or masking by a single dominant odor in the environment. These results have implications for humans living or working in odorous environments.

Animals↗

Removal of the vomeronasal organ impairs lordosis in female hamsters: effect is reversed by luteinising hormone-releasing hormone.

In female golden hamsters, vomeronasal organ removal disrupts the elicitation of lordosis by lumbosacral tactile stimulation. A similar disruption occurs if the nasopalatine ducts are closed, without removing the vomeronasal organ. Injection of luteinising hormone-releasing hormone reverses the effect of vomeronasal organ removal. These findings suggest that chemosensory signals from the male hamster act via the accessory olfactory system, to facilitate the triggering of lordosis by somatic stimulation.

Animals↗

The inhibitory role of the visually responsive region of the thalamic reticular nucleus in the rat.

Two-shock inhibition, a feature of 98 of 100 P cells recorded in the dorsal lateral geniculate nucleus of the normal rat, was not observed in 91 of 140 geniculate cells after an electrolytic lesion had been made in the adjacent visually responsive thalamic reticular nucleus. Nine geniculate cells recorded both before and after a reticular lesion had their initial inhibition abolished or substantially reduced after the lesion. The reticular lesion eliminated the bursts of spikes which normally terminate periods of inhibition following electrical or photic stimulation but caused no other changes in receptive field organization of geniculate cells. We conclude that the visually responsive region of the thalamic reticular nucleus in the rat is responsible for the profound two-shock inhibition and for the post-inhibitory bursts which are normal properties of relay cells of the dorsal lateral geniculate nucleus.

Action Potentials↗

The West Indian manatee (Trichechus manatus) lacks a vomeronasal organ.

Completely aquatic marine mammals of the order Cetacea such as whales and dolphins have a reduced or absent olfactory system and neither a vomeronasal organ nor an accessory olfactory bulb. In comparison, seals, which are only partially aquatic, have olfactory and accessory olfactory systems including the vomeronasal organ. Thus, there seems to be a strong relation between the degree of adaptation to an aquatic environment and the degree of reduction in olfactory structures. Sirenians, such as manatees and dugongs, are another family of marine mammals which have secondarily adapted to a fully aquatic existence, yet there is dispute about the status of their olfactory structures. In the present study there was no evidence for a vomeronasal organ in the adult West Indian Manatee, Trichechus manatus. Additionally, the main olfactory system appeared quite rudimentary. These observations support the hypothesis that, in mammals, secondary adaptation to an aquatic environment leads to the reduction or loss of the olfactory senses.

Adaptation, Biological↗

Topographic coding of odorant quality is maintained at different concentrations in the salamander olfactory epithelium.

In a recent study in the tiger salamander, Ambystoma tigrinum, were demonstrated topographic patterns of responsivity across the olfactory epithelium which were characteristic for each odorant. The present study was initiated to investigate whether these patterns remain constant when odorant concentration is varied. Odorant-induced electro- olfactograms were recorded from at least 12 sites on each epithelium. The odorants used were pinene, amyl acetate and propanol. Each epithelium was tested with one odorant, delivered at 3 concentrations. For comparison between animals, the epithelia were divided into 3 regions with at least 4 recording sites per region. An analysis of variance model was used to study odorants, concentrations, regions and animals. Odorant-induced regional patterns in responsivity were similar across all concentrations. In particular, the region of highest responsivity at one concentration was the region of highest responsivity at all concentrations. It is concluded that topographic patterns of receptor cell responses may reflect an underlying genetic component in the distribution of receptor cells. This distribution is related to two aspects of receptor cell responses: responsivity to particular odorants (Fig. 4) and general responsivity to all odorants (Fig. 5).

Ambystoma↗