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J W Conlee

Publications and source records attributed to J W Conlee.

26 records · Page 2Linked to original sources

Auditory brainstem anomalies in albino cats. I. Evoked potential studies.

The amount of melanin pigmentation in the inner ear is positively correlated with the general pigmentation of the body and specifically with the amount of pigment in the eye. The misrouting of retinofugal projections which accompanies ocular and oculocutaneous albinism has been thought to be a defect in decussation unique to the visual system. Evidence suggests that functional abnormalities may also exist in the auditory systems of albino humans and animals. To evaluate this possibility, evoked potential techniques were used to examine the functional anatomy of decussating brainstem auditory pathways in albino and pigmented cats. Auditory brainstem responses (ABRs) were recorded from albino, pigmented, and Siamese cats using monaural stimulation. ABRs were recorded ipsilateral and contralateral to the stimulated ear. The albinos were complete tyrosinase-negative (cc), not the dominant white (W) variety associated with deafness. In pigmented cats, the amplitudes of ABRs recorded with the reference electrode ipsilateral to the stimulated ear and the ABRs recorded using the reference contralateral to the stimulated ear did not differ by more than 40% for individual components appearing between 2 and 4 ms after stimulus onset. In albino cats the components at these latencies were obliterated or greatly attenuated in the ABR recorded using the reference contralateral to the stimulated ear. These data indicate that anomalies may exist in the brainstem at the level of the acoustic striae, superior olivary nuclei and/or trapezoid body in tyrosinase-negative albino cats.

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Differential rearing affects responsiveness of rats to depressant and convulsant drugs.

The effects of postweaning housing in environmental complexity (EC) or isolation cage (IC) conditions upon the development of anesthesia following sodium pentobarbital administration and upon seizure susceptibility following metrazol administration were studied in separate groups of rats. Male and female EC rats lost the righting reflex and developed unconsciousness more rapidly following sodium pentobarbital injection (105 mg/kg, IP) than did littermate IC rats. Male EC and IC rats did not differ in the CD50 (50% convulsion dosage by log probit analysis) following injection of a range of metrazol doses (20 to 35 mg/kg, IP) when they were kept in a quiet dimly lighted room. However, the addition of stroboscopic light stimulation (1-100 Hz) to the above procedure (doses 17.5 to 30 mg/kg) reduced the CD50 for the IC rats but did not affect the CD50 for the EC rats. The results support the view that brain excitability is lower in animals reared in environments providing higher levels of sensory stimulation.

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Descending projections from the inferior colliculus to the dorsal cochlear nucleus in the cat: an autoradiographic study.

Descending auditory projections from different subdivisions of the inferior colliculus to the dorsal cochlear nucleus were investigated in experiments using the autoradiographic technique. Tritiated leucine injections confined to the pericentral nucleus of the inferior colliculus resulted in the appearance of dense grain clusters distributed over the outer fusiform cell and molecular layers of the ipsilateral dorsal cochlear nucleus. The pattern and distribution of dense grain clusters strongly resembled the central terminals of glomeruli described previously in the dorsal cochlear nucleus. Injections into the dorsal region of the central nucleus of the inferior colliculus led to a more diffuse distribution of grains over the middle and outer fusiform cell layer and over the innermost molecular layer of the dorsal cochlear nucleus on both sides. Dense grain clusters were also evident after these injections but they appeared to result from the concomitant injection into the overlying pericentral nucleus. Finally, injections of tritiated leucine into the ventral region of the central nucleus of the inferior colliculus (which included some cells of the dorsal nucleus of the lateral lemnisus) resulted in the heaviest labelling of the dorsal cochlear nucleus. Grains were distributed perisomatically and peridendritically around fusiform cells of the fusiform cell layer and giant cells of the deep dorsal cochlear nucleus on both sides. The results indicate that the pericentral nucleus and the more dorsal region of the central nucleus of the inferior colliculus establish overlapping connections with the outermost fusiform cell and molecular layers of the dorsal cochlear nucleus. Both sets of connections seem to be made principally with interneurons through glomerular and other inputs to scattered small cells which exist in these laminae. Since cortical and thalamic descending fibers directly innervate only the most dorsal regions of the inferior colliculus, it may be that this region of the tectum selectively mediates activity from these higher auditory centers. Such centers may indirectly influence fusiform cell response properties through collicular inputs to small cells of the dorsal cochlear nucleus that contact fusiform cells. A more substantial and direct projection was shown to arise from the ventral region of the inferior colliculus to innervate both the fusiform and giant cells. As such, the descending connections from the ventral inferior colliculus may be more likely to influence directly the output of both the fusiform and giant cells and, therefore, the projection of auditory information from the dorsal cochlear nucleus to higher levels.

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Abnormal retinal projections in cats with the Chediak-Higashi syndrome.

The Chediak-Higashi syndrome (CHS) occurs in mammals, including humans and cats. The CHS is characterized by decreased oculocutaneous pigmentation, enlarged cytoplasmic granules, increased susceptibility to infections, and a hemorrhagic tendency. Ocular anomalies include pale irides and albinotic or subalbinotic fundi. Cats with CHS also have photophobia and prolonged postrotatory nystagmus. Since hypopigmentation of the pigment epithelium is correlated with misrouting of retinal ganglion cells in mammals, visual projections of CHS cats were examined by autoradiographic techniques to determine whether they exhibit abnormal retinogeniculate projections. In CHS cats, misrouted optic projections fragment layer A1 of the dorsal lateral geniculate nucleus into several islands, similar to the disruption of this lamina reported in the Siamese cat.

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Age- and position-dependent effects of monaural acoustic deprivation in nucleus magnocellularis of the chicken.

The effect of a moderately severe monaural conductive hearing loss on the development of neuronal size in the avian nucleus magnocellularis (NM) was investigated. NM is considered to be the homologue of the mammalian anteroventral cochlear nucleus and receives large calyceal synaptic endings from the cochlear nerve. Silicone plastic earplugs which produce a 40 dB broadband conductive hearing loss were placed in one external auditory canal of chick embryos on the 18th day of incubation. After hatching, all animals were housed in communal brooders and sacrificed at 4, 10, 25, and 60 days of age. Nissl-stained sections from paraffin- and plastic-embedded brains were used to sample neuronal cross-sectional areas in NM on the deprived and nondeprived sides of the brain. These samples were obtained separately in each brain from three posterior-to-anterior percentage quartiles within NM. Statistical analyses of these data showed that the severity of deprivation-induced cell size changes in NM varied as a function of both age and position. In the 4- and 10-day groups, no significant deprived-versus-nondeprived differences in neuronal size were seen in any area of the nucleus. At 25 days after hatching, only the third posterior-to-anterior quartile (i.e., 50-74%) showed a significant difference; this difference was also significantly greater than those in the second and fourth quartiles at this age. By 60 days, all three sampled areas in NM showed highly significant differences (averaging 12%) in mean neuronal cross-sectional area. Cell size values from the deprived and nondeprived sides of 60-day-old experimental animals were also compared with values from 60-day-old control subjects. Whereas the deprived NM cells were significantly smaller than controls, there was no evidence for a reliable hypertrophy in the nondeprived cells. Thus, the principal effect of the acoustic deprivation produced was to retard continued growth of the deprived neurons after 4 days of age.

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Effects of aging on normal hearing loss and noise-induced threshold shift in albino and pigmented guinea pigs.

In a previous investigation into noise-induced hearing loss by comparing 2-month-old albino with pigmented guinea pigs, albinos displayed significantly greater shifts in cochlear microphonic (CM) threshold and less recovery than the pigmented animals 7 days after noise exposure. The present study compared the responses of 14-month-old albino and pigmented guinea pigs to the same noise parameters used previously. Thresholds for the first detectable elicitation of CM for three pure tones were recorded prior to, at 90 min and at 7 days after a 45-min exposure to 126 dB broadband noise. Before exposure to noise, thresholds for pigmented guinea pigs were 24 dB higher than those in the albinos. Following noise exposure, the pigmented animals showed less than half the amount of threshold shift displayed by the albinos. This change ws attributed to the higher pre-exposure thresholds in the pigmented guinea pigs. Converging lines of evidence suggest that cochlear pigmentation may have both protective and toxic influences on the inner ear.

Aging↗

Comparative anatomy of melanin pigment in the stria vascularis. Evidence for a distinction between melanocytes and intermediate cells in the cat.

Although Corti in 1851 first described the presence of cochlear pigmentation in the stria vascularis (SV) of "very old" cats, modern studies have failed to find pigment consistently in the feline stria. While the variable presence of pigment in the feline SV would appear to contrast with this structure's uniform pigmentation in other mammalian species, variability in both the distribution and abundance of inner ear pigment has rarely been studied in any species. In the present study, the SV was examined light microscopically in sectioned material or whole-mounts from pigmented and albino animals of 5 species, including the cat, guinea pig, rabbit, ferret and mouse. In these species, the SV of each pigmented animal contained varying amounts of melanin pigment and none was found in the albino inner ear. Pigmented guinea pigs contained the most uniformly dense and least variable distribution of strial melanin, followed by the rabbit, mouse, ferret and cat. Several species also displayed more strial pigment apically and less basally. In cats, pigmented cells were principally located adjacent to the strial capillaries. Ultrastructural studies of the stria in pigmented cats revealed that these perivascular cells frequently contained an abundance of pigmented organelles and other structural features which allowed them to be distinguished from intermediate cells.

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