PubMed HealthSearch

Biomedical subjects

A F Ryan

Publications and source records attributed to A F Ryan.

At least 19 recordsLinked to original sources

Identification of a short form of the P2xR1-purinoceptor subunit produced by alternative splicing in the pituitary and cochlea.

A truncated form of the P2xR1 purinoceptor subunit (which we designate P2xR1-2) was detected in rat pituitary gland and the secretory epithelial tissue (stria vascularis) of the cochlea using RT-PCR of solid-phase cDNA libraries. PCR products corresponding to the P2xR1 purinoceptor subunit (1) were obtained from vas deferens, brain and microdissected cochlear sensory epithelial tissues including organ of Corti, sacculus and crista ampullaris. Cloning and sequencing revealed that the P2xR1-2 product included an 85-bp insertion in a region corresponding to a novel C-terminal end of the second membrane spanning domain and continuing as the cytoplasmic domain. A stop codon sequence after the first 51 bp of the insert effectively truncates this subunit, reducing the final cytoplasmic domain by 90% compared with the previously published P2xR1(-1) sequence, thereby reducing the overall peptide by approximately 25%. The region of the receptor lost in the truncated version coded for a number of serine/proline rich regions which may act as potential intracellular regulatory sites.

Alternative Splicing

Expression of acidic FGF mRNA in rat auditory brainstem during postnatal maturation.

In situ hybridization was used to investigate the mRNA distribution of acidic and basic fibroblast growth factor (aFGF and bFGF) in the auditory brainstem of neonatal and adult rats. bFGF mRNA was not detected at any age. In adult rats, aFGF mRNA was strongly expressed in the principal neurons of the anteroventral and posteroventral cochlear nuclei, but not in the octopus cells. In the dorsal cochlear nucleus, aFGF mRNA was seen only in scattered smaller vertical cells. aFGF was strongly expressed in the nucleus of the trapezoid body and in all periolivary cell groups, but not in the medial and lateral olivary nuclei. No expression was observed in the lemniscal nuclei or in the central nucleus of the inferior colliculus, but large neurons in the external zone of the colliculus were labeled. Developmentally, low levels of aFGF expression appeared in the cochlear nuclei and olivary nuclei between P0 and P6. This expression increased rapidly during the onset of hearing, between P10 and P14, and reached adult level by P14-P17. Labeling in collicular neurons appeared slightly later. The results suggest that the appearance of strong aFGF mRNA expression is related to the onset of function.

Aging

Nicotinic acetylcholine receptor subunits expressed in rat cochlea detected by the polymerase chain reaction.

Poly(A)+ RNA was extracted from rat cochleae using guanidinium thiocyanate and oligo(dT)-cellulose, and converted into cDNA by reverse transcriptase using an oligo(dT) primer. Oligonucleotides complementary to conserved 5' and 3' regions of alpha and beta subunits of the neuronal nicotinic acetylcholine receptor subunit (nAChR) family were then used as primers to screen the cochlear cDNA via the polymerase chain reaction (PCR) procedure. PCR products of approximately 900 bp length, purified by agarose gel electrophoresis, were nick translated to produce [32P]-dCTP labelled probes for Southern Blot screening of nAChR cDNAs. Of the four alpha and three beta subunits screened, only alpha 5 and beta 4 nAChR cDNAs hybridized. The alpha 5 PCR product was cloned and sequenced and proved to be identical to published sequence for alpha 5. The detection of alpha 5 and beta 4 nAChR subunit expression in cochlear tissue supports previous electrophysiological and immunocytochemical evidence for nAChR-mediated centrifugal control of hearing function.

Animals

Acidic and basic FGF mRNA expression in the middle ear mucosa during experimental acute and chronic otitis media.

Fibroblast growth factors (FGFs) induce the proliferation and differentiation of cells of mesodermal and neuroectodermal origin. Using in situ hybridization, messenger ribonucleic acid encoding acidic FGF, basic FGF and FGF receptor 1 (FGFR1) were localized in the middle ear mucosa of experimental animals with acute and chronic immune-mediated otitis media with effusion (OME). Basic FGF-labeled cells were seen in the subepithelial connective tissue layer (SE) preferentially near the epithelial basement membrane. Acidic FGF-labeled cells were seen in the SE, preferentially near blood vessels and occasionally in the cellular middle ear effusion (CE). FGFR1-labeled cells were seen in the SE and in the CE. The distribution of labeled cells in the middle ear suggests that basic FGF is produced by fibroblasts, acidic FGF is produced by leukocytes, and FGFR1 is produced by both fibroblasts and leukocytes. A role is proposed for these peptides in the proliferation and maintenance of the middle ear submucosa during otitis media.

Acute Disease

Selective retrograde transport of nipecotic acid, a GABA analog, labels a subpopulation of gerbil olivocochlear neurons.

Perfusion of the gerbil cochlea with micromolar quantities of 3H-gamma-aminobutyric acid (GABA) results in rapid, selective labeling of 50-60% of the olivocochlear (OC) efferent terminals on afferent dendrites beneath the inner hair cells, and all of the efferent terminals beneath the outer hair cells. In order to identify the neurons from which these GABA-accumulating terminals originate, the cell bodies were localized by using retrograde transport of 3H-nipecotic acid, a metabolically inert GABA analog. With survival times of 6-30 hours after cochlear injection, myelinated OC efferent fibers and cell bodies were well labeled, with the greatest number being labeled at 12-18 hours. All of the labeled neurons belonged to the medial OC system, and no lateral OC neurons were labeled. It is concluded that the GABA-accumulating endings in the gerbil cochlea arise from medial OC neurons, and therefore that medial OC efferent neurons in this species project to both inner and outer hair cell regions.

Animals

Immunohistochemical localization of fibronectin-like protein in the inner ear of the developing gerbil and rat.

Immunohistochemistry was used to demonstrate the distribution of fibronectin-like protein within the developing inner ear of two species of altricial rodents: gerbils and rats. While there were temporal differences between the two species, the developmental sequence of immunostaining was virtually identical. Most notably, in rats from embryonic day 18 through day 1 postpartum, and in gerbils from birth through day 4 postpartum, intense, discrete fibronectin-like immunoreactivity was observed in the cochlea immediately beneath the inner and outer hair cells, sites of active auditory nerve fiber growth and nerve-hair cell synaptogenesis at these ages. The results suggest that fibronectin is appropriately positioned spatially and temporally to play a significant role in promoting, guiding and/or maintaining neural innervation within the developing organ of Corti. The temporo-spatial pattern of immunostaining in Schwann cells and auditory (VIIIth cranial) nerve neurons implies that fibronectin also plays a significant role in the early formation of myelin. In non-neural elements of the cochlea, fibronectin is a major structural component within the basilar membrane at all of the developmental stages investigated.

Animals

Lymphocyte subsets in immune-mediated otitis media with effusion.

To examine the role of T-cell subsets in immune-mediated otitis media with effusion induced by keyhole limpet hemocyanin (KLH), we used immunohistochemical methods to investigate the kinetics of immunocytes of the middle ear (ME) and eustachian tube (ET) in healthy BALB/c mice. Antibodies against murine macrophages and granulocytes (anti-Mac-1), helper T cells (anti-Lyt-1), suppressor T cells (anti-Lyt-2), immunoglobulins (anti-IgG, -IgM, -IgA), secretory component (SC) and KLH were used. The ME exhibited a substantial immune response, whereas the response of the ET was minor and was associated with a secondary ME immune response. After KLH challenge, an effusion with an extensive infiltration of inflammatory cells (Mac-1, IgG+ and IgM+ cells) was observed at days 1 and 3 in the ME cavity and rapidly disappeared by day 7. Within the ME mucosa, a large number of cells was observed at days 1 and 3, peaking on day 7 when a submucosal lymphoid infiltration was detected. In the immune response of the ME mucosa, Mac-1 cells were the predominant cell type followed by helper T cells, IgG+ cells, IgA+ cells and then IgM+ cells. Suppressor T cells were rarely detected after KLH challenge. SC was present within ME epithelial cells from days 1 to 14.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Central auditory metabolic activity induced by intense noise exposure.

Neural activity in the central auditory system was mapped by measuring 2-deoxyglucose (2-DG) uptake during a one hour exposure to a two-octave (1414-5656 Hz) band of noise. Gerbils were exposed to 100, 110 or 120 dB SPL, intensities which can produce only temporary (100 dB) or both temporary and permanent (120 dB) hearing loss. Exposure to 100 dB SPL evoked high levels of neural activity throughout responsive regions of auditory nuclei. At 110 dB SPL, a central region of low neural activity was surrounded by areas exhibiting increased activity. At 120 dB SPL, neural activity was low in almost all areas of auditory nuclei. To study the effects of permanent hearing loss on auditory neuronal activity, other animals were given 2-DG during exposure to 65 dB SPL broad band noise as a test stimulus, two months after exposure to the noise band at 110 dB SPL. Central auditory nuclei showed a tonotopic region of low neural activity corresponding to an approximately 3 kHz pure tone, surrounded by regions of evoked activity. The deficits in evoked metabolic activity observed both during and long after noise exposure appear to exceed those predicted from the degree of temporary and permanent threshold shift produced by the same noise exposures.

Acoustic Stimulation

Cochlear degeneration in aged rats of four strains.

Animals with various degrees of inbreeding, some of which are albino, are frequently used in biological research. Albinos do not produce melanin and it is therefore absent from the cochlea. While the function of melanin is unknown, it has been hypothesized that it is involved in cochlear homeostasis. It is possible then, that age-related degeneration may be affected by the presence or absence of melanin. We therefore evaluated young (2-6 months old) and aged (24-36 months old) cochleas in 4 different rat strains: albino Fischer 344 and Lewis rats and pigmented Lewis-Brown Norway F1 rats and Brown Norway rats. Cochlear morphology was the same across all strains of young adult animals with the exception that the pigmented animals had small, darkly stained granules in the stria vascularis. The aged pigmented animals all had large granules as well as small ones. Degeneration of spiral ganglion cells in the apical region of the ganglion had occurred in the old animals of all strains. Strial degeneration at the apex was also present in aged animals. There was no correlation between the presence or absence of melanin and the magnitude of cochlear degenerative changes in the aged animals. The presence or absence of melanin therefore, appears to have no effect on cochlear degeneration in the aged rat cochlea.

Aging

Transgenic mice. Current applications to the study of the auditory and vestibular systems.

Understanding the variety of genetic disorders affecting the inner ear demands that we first comprehend the molecular mechanisms involved in its development. Mechanisms of development can best be understood by the study of mutant organisms. Progress in the study of mammalian development has been hampered by the difficulty inherent in the identification and isolation of mutated genes. Transgenic technology provides a direct experimental approach to the study of the control and tissue specificity of gene expression. Additionally, this technology allows new and exciting methods of human disease modeling. A by-product of this technology is the creation of insertional mutants, which provide a unique approach toward the identification of genes involved in a variety of developmental processes including those of hearing and balance.

Animals

Enkephalin mRNA production by cochlear and vestibular efferent neurons in the gerbil brainstem.

Preproenkephalin mRNA production by efferent neurons projecting to the gerbil inner ear was assessed using combined in situ hybridization and retrograde labeling with fluorescent tracers. Virtually all vestibular efferent neurons were positive for preproenkephalin mRNA. Of the cochlear efferents, one-half of the medial olivocochlear neurons were positive for enkephalin. All lateral olivocochlear neurons were negative for enkephalin. The results suggest that there are two, biochemically distinct subpopulations of medial olivocochlear efferents in the gerbil.

Animals

Preservation of mRNA during in situ hybridization in the cochlea.

Specific nucleic acid sequences can be identified within cells using in situ hybridization. Hybridization for mRNA can document the distribution and amount of specific gene transcripts. Decalcification protocols used for immunohistochemistry in the cochlea were evaluated for use with in situ mRNA hybridization. No loss of mRNA was detected following the use of decalcification solutions at 4 degrees C when paraformaldehyde was added to the EDTA solution. The primary determinant of mRNA preservation was paraformaldehyde.

Animals

Occurrence and distribution of non-NMDA glutamate receptor mRNAs in the cochlea.

The expression of mRNAs encoding five putative non-NMDA glutamate receptors was investigated using in situ hybridization with radiolabeled riboprobes. Hybridization was observed in spiral ganglion neurons with probes complementary to mRNA products of the glutamate receptor genes GluR2 and GluR3. No specific hybridization was observed with probes for GluR1, GluR4 or GluR5. The results support the hypothesis that glutamate is the transmitter between cochlear inner hair cells and spiral ganglion neurons, and that it acts via non-NMDA glutamate receptors.

Cochlea

Homing of lymphocytes to the inner ear.

The migration of lymphocytes to the inner ear was studied during an immune response in the cochlea. Sensitized lymphocytes from peripheral blood, neck lymph nodes and spleen from strain 13 inbred guinea pigs were labelled with 51Cr and injected intravenously into strain 13 recipients undergoing an inner ear immune response. Eighteen hours later the temporal bones and immune organs of the recipients were assayed for radioactivity to detect the infiltration of labelled cells. In addition autoradiography was performed to localize labelled cells in the inner ear. More lymphocytes from the peripheral blood entered the inner ear during the immune response than spleen or lymph node cells. This indicates that the inner ear comes under the immuno-surveillance of the peripheral circulation in response to antigenic stimulation. Most labelled lymphocytes were observed in the basal turn of the scala tympani and in and around the spiral modiolar vein of the challenged cochlea. A few cells were seen also in the control cochleas but almost all where inside the blood vessels. This pattern suggests that the blood vessels of the spiral modiolar vein are the initial site through which lymphocytes entered the inner ear.

Animals

Collaterals from lateral and medial olivocochlear efferent neurons innervate different regions of the cochlear nucleus and adjacent brainstem.

Two populations of superior olivary neurons which project to different sensory cell regions in the cochlea also give off collateral projections to the ventral cochlear nucleus (VCN) and adjacent brainstem. To determine whether these VCN projections also have different targets they were characterized by selective retrograde amino acid transport. Retrograde transport of 3H-d-aspartate (D-ASP) selectively labeled the unmyelinated fibers and neurons of the lateral olivocochlear (OC) system including a dense collateral projection to the central VCN. Retrograde transport of 3H-nipecotic acid (NIP) labeled the myelinated fibers and neurons of the medial OC system, including collateral projections to the peripheral VCN, subpeduncular granule cells, and nucleus Y. Medial and lateral OC efferent collaterals thus innervate different regions of the CN. Lateral system collaterals overlap extensively with Type I spiral ganglion cell afferent input. They are well positioned to play a role in modulating afferent input to the central auditory system, as is the primary projection of these efferents to the cochlea. The medial system collaterals project near the recently described afferent projections of Type II spiral ganglion cells. The medial system collaterals may therefore be related to the function of outer hair cells, as the medial system primary axons appear to be in the cochlea.

Animals

Autoradiographic studies of selective amino acid uptake by neural and nonneural elements in the gerbil cochlea.

The cochlea is well suited for studies of the uptake properties of auditory neurons and nonneuronal supporting cells. Probe concentrations of radioisotopically labeled amino acids, including putative neurotransmitters and their precursors, breakdown products, and blockers, can be introduced via the natural, fluid-filled channels of the inner ear. Uptake patterns can be mapped at cellular and intracellular levels using light and electron microscopic autoradiographic methods. The procedures for introduction of label, fixation, plastic embedment, and light and electron microscopic autoradiography are described with special reference to the cochlea. Labeling patterns observed with over 20 amino acids are summarized for hair cells, spiral ganglion neurons, efferents, and nonneural elements of the stria vascularis, limbus, and modiolus. Limitations on the interpretation of results and their implications for the general usefulness of the methods are discussed.

Amino Acids

Comparison of immune-mediated models of acute and chronic otitis media.

The distribution of immunoglobulin-bearing cells and the pattern of histopathological changes in the middle ear (ME) mucosa, round window membrane (RWM), and inner ear were compared during acute and chronic immune-mediated otitis media with effusion (OME) in the guinea pig as an animal model. In both acute and chronic immune responses (IRs), mucosal hyperplasia, edema, neovascularization, and cellular infiltration were observed. IgG+ cells were predominant in both the acute and chronic IRs. The number of IgA+ cells, however, increased in the mucosa and RWM during chronic IRs. Only the chronic IR resulted in gland formation within the ME and inflammation within the cochlea. These results indicate that the chronic IR was more similar to reports of clinical OME than the acute IR. The cochlear inflammation associated with chronic OME can lead to sensorineural hearing loss, as reported in clinical studies.

Acute Disease