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Biomedical subjects

J B Suffield

Publications and source records attributed to J B Suffield.

3 recordsLinked to original sources

Electrophysiological assessment of cognitive disorder in closed head-injured outpatients.

Severe closed head-injury results in a multitude of long-lasting cognitive deficits. ERPs can effectively complement the more traditional behavioural measures to provide information that is not available through any other means. It is now fairly clear that a late positive wave, P3, associated with contextual updating is attenuated and prolonged in a variety of conditions in the head-injured. It is also possible that measures of selective attention such as the processing negativity may be abnormal in this group. A more definitive statement will, however, have to wait the results of further investigations. A number of investigators have now indicated that cognitive processing is slowed in the head-injured. Again, ERPs have been instrumental in explaining why it is slowed. Decision-making time as measured by RT is generally longer than P3 latency. Because P3 latency is delayed in the head-injured, the time required for evaluation of the stimulus (recognition and classification) is slowed in the head-injured. The additional delay in RT must, however, be explained by other processes, most probably a response bias that perhaps emphasizes accuracy at a cost of speed. Such a strategy can be manipulated if the patient is provided with cues about their speed of responding. Finally, ERPs have been instrumental in explaining possible reasons for cognitive slowing. A powerful CNV technique may permit the categorization of the head-injured into at least 2 distinctive groups: those that tend to underprocess information (perhaps as a result of apathy or a lack of motivation) and those that tend to overprocess (perhaps as a result of an inefficient and needless processing of irrelevant information resulting in fatigue). The extent to which the different modes of information processing are related to the site of brain injury and possible personality change remains an issue of speculation.

Brain Injuries

Time course of adaptation and recovery of channels selectively sensitive to frequency and amplitude modulation.

In a series of experiments we investigated the time course of adaptation and recovery of channels in the human auditory system selectively sensitive to frequency and amplitude modulation (FM and AM). We determined the rate of loss of sensitivity to modulation using sinusoidal frequency or amplitude modulation (SFM or SAM) of a 50 dB SL, 500-Hz pure tone carrier over a 30-min period. Adaptation stimuli were modulated at ten times the preadaptation modulation detection threshold, as determined immediately before the 30-min adaptation session. Modulation rates investigated were 2, 4, 8, 16, and 32 Hz. Long exposure to SFM always elevated thresholds for detection of SFM more than this exposure elevated thresholds for detection of SAM. Similarly, adapting to SAM always elevated SAM detection thresholds more than SFM thresholds. Loss of sensitivity during adaptation was relatively slow; asymptotic loss of modulation sensitivity took 20 to 30 min. The recovery of modulation sensitivity after cessation of the modulation component of the adapting stimulus was determined in a second experiment. Recovery was found to be rapid; most of the recovery occurred within the first 60 sec. Our evidence suggests that there exist two types of modulation-sensitive channels in the human auditory system--one selectively sensitive to amplitude modulation and the other to frequency modulation. They appear to have similar time courses for adaptation and for recovery.

Adaptation, Physiological

Human auditory steady state potentials.

The auditory steady state potentials may be an important technique in objective audiometry. The effects of stimulus rate, intensity, and tonal frequency on these potentials were investigated using both signal averaging and on-line Fourier analysis. Stimulus presentation rates of 40 to 45/sec result in a 40 Hz sinusoidal response which is about twice the amplitude of the 10 and 60/sec responses. No significant effects of subject age or sex were seen. The 40/sec response shows a linear decrease in amplitude and a linear increase in latency when stimulus intensity is decreased from 90 to 20 dB normal hearing level. This response is recordable to within a few decibels of behavioral threshold. Stimuli of different tonal frequency give similar amplitude/rate functions, with absolute amplitude decreasing with increasing tonal frequency. Signal averaging and Fourier analysis provide nearly identical amplitude/rate, amplitude/intensity, and latency/intensity functions. Both methods of analysis may be used, therefore, to record the 40 Hz steady state potential. Fourier analysis, however, may be the faster and less expensive method. Furthermore, techniques ("zoom") are available with Fourier analysis to study the effects of varying stimulus parameters on-line with the Fourier analysis procedure.

Acoustic Stimulation