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L Mentz

Publications and source records attributed to L Mentz.

6 recordsLinked to original sources

Proliferating hair cell precursors in the ear of a postembryonic fish are replaced after elimination by cytosine arabinoside.

Identified, proliferating S-phase cells in the postembryonic fish ear are known to be the precursors to new hair cells. It is not known, however, whether the ability to proliferate is restricted to a small population of cells. The ability of cells that are not normally in the cell cycle to enter S-phase was examined using the antimitotic drug cytosine arabinoside (ara-C). The normal population of S-phase cells in the saccule was destroyed by a single large dose of ara-C. Two weeks later, the presence of S-phase cells was evaluated using the S-phase marker bromodeoxyuridine. The results strikingly demonstrate that S-phase cells are replaced, since S-phase cells returned to the saccule in the same number as found in normal fish. The data are interpreted to suggest that a large number of nonsensory support cells are capable of entering the cell cycle and that some mechanism must regulate which of these are actually cycling at any given time.

Animals↗

Studies in infant behavioural audiometry. I. Neonates.

The behaviour of 93 clinically normal neonates was video-recorded while they were presented with sequences of sound stimuli which varied in sound pressure level, bandwidth and rise time and which included two voice signals and a no-sound (control) trial. Video records were made both for the whole body aspect and for a 3 1/2 X "close-up" of the head. Later, the video records were shown to 6 observers who were allowed to see the babies for 10 sec at each trial. The first 5 sec was a pre-stimulus observation period, and the second 5 sec usually contained a sound stimulus. Between the trials, the observers were given 20 sec in which to record (1) pre-stimulus activity, (2) confidence in response, and (3) movement details (data for (3) not reported here). For the whole-body aspect, observers were allowed to see (1) the whole body, (2) the head, arms and trunk, (3) the arms, trunk and legs, (4) the head only, (5) the arms and trunk only, or (6) the legs only, during different viewing sessions. For the head aspect, they could see (7) the whole head, (8) the head above the upper lip, or (9) the head below the upper lip. This segmentation was achieved by masking parts of the television screen with shutters. The response confidence ratings were analysed using aspects of signal detection theory to show differences amongst various body segments (p less than 0.001), sound pressure levels (p less than 0.001), bandwidths (p less than 0.001), and rise times (p less than 0.01). There were significant interactions between sound pressure level X bandwidth (p less than 0.001), sound pressure level X rise time (p less than 0.01), and bandwidth X rise time (p less than 0.001). A 90-dB broad-spectrum noiseband was by far the most effective stimulus. The response to different sound stimuli was differentially affected by pre-stimulus activity state. The results are discussed in relation to recent work on clinical screening techniques.

Acoustic Stimulation↗

Studies in infant behavioural audiometry. II. Six-week-old infants.

The behaviour of 90 clinically normal 6-week-old babies previously studied as neonates was video-recorded while they were presented with sequences of sound stimuli. The stimuli varied in sound pressure level, bandwidth and rise time, and included two voice signals and a no-sound (control) trial. Video records were made both for the whole body aspect and for a 3 1/2 X 'close-up' of the head. Later, the video records were shown to 6 observers who were allowed to see the babies for 10 s at each trial. The first 5 s was a prestimulus observation period, and the second 5 s usually contained a sound stimulus. Between the trials, the observers were given 20 s in which to record (i) prestimulus activity, (ii) confidence in response, and (iii) movement details (data for [iii] not reported here). Different segments of the baby's body were observed on different occasions as detailed in our neonatal report. The response confidence ratings were analysed, using aspects of signal detection theory, to show differences amongst various body segments (p less than 0.001), sound pressure levels (SPL) (p less than 0.001), band widths (BW) (p less than 0.001), and rise times (RT) (p less than 0.001). There were significant interactions between SPL and BW (p less than 0.05) and SPL X RT (p less than 0.001). The 3 factor interaction (SPL X BW X RT) was also significant (p less than 0.001). A 90-dB broad-spectrum noise band was by far the most effective stimulus. The response to different sound stimuli was affected by the baby's posture (lying or sitting) and by prestimulus activity state. The results are discussed in relation to our previous neonatal study.

Acoustic Stimulation↗

Studies in infant behavioural audiometry. III. Six-month-old infants.

The behaviour of 95 clinically normal 6-month-old babies previously studied as neonates and as 6-week-old infants was video-recorded while they were presented with sound stimuli. The stimulus series varied in sound pressure level (SPL) (30 and 60 dB), band with (BW) and rise time (RT), and included two voice signals and a no-sound (control) trial. Video-records were made both for the whole body aspect and for a 3 1/2 X 'close-up' of the head. Later, the video-records were shown to 6 observers who were allowed to see the babies for 13 s at each trial. The first 5 s was a pre-stimulus observation period, and the second 8 s usually contained a sound stimulus. Between the trials, the observers were given 20 s in which to record pre-stimulus activity, confidence in response, and movement details. Data for movement details are not reported here. Different segments of the baby's body were observed on different occasions as detailed in our previous reports. The confidence ratings for response to tonal stimuli were analyzed using aspects of signal detection theory for differences amongst various body segments (n.s.), SPL (p less than 0.001), BW (p less than 0.05), and RT (p less than 0.01). A 60-dB broad-spectrum noise band (BSN) and the 2 voices were by far the most effective stimuli. They elicited detectablities which differed between segments. The response to different sound stimuli was affected by the baby's pre-stimulus activity state. The results are discussed in relation to our previous studies.

Acoustic Stimulation↗