Single tactile afferents outperform human subjects in a vibrotactile intensity discrimination task

Author:

Arabzadeh Ehsan123,Clifford Colin W. G.14,Harris Justin A.1,Mahns David A.5,Macefield Vaughan G.56,Birznieks Ingvars67

Affiliation:

1. School of Psychology, University of Sydney, Sydney, Australia;

2. Eccles Institute of Neuroscience, John Curtin School of Medical Research, Australian National University, Canberra, Australia;

3. ARC Centre of Excellence for Integrative Brain Function, Australian National University Node, Canberra, Australia;

4. School of Psychology, UNSW Australia, Sydney, Australia;

5. School of Medicine, University of Western Sydney, Sydney, Australia;

6. Neuroscience Research Australia, Sydney, Australia; and

7. School of Science and Health, University of Western Sydney, Sydney, Australia

Abstract

We simultaneously compared the sensitivity of single primary afferent neurons supplying the glabrous skin of the hand and the psychophysical amplitude discrimination thresholds in human subjects for a set of vibrotactile stimuli delivered to the receptive field. All recorded afferents had a dynamic range narrower than the range of amplitudes across which the subjects could discriminate. However, when the vibration amplitude was chosen to be within the steepest part of the afferent's stimulus-response function the response of single afferents, defined as the spike count over the vibration duration (500 ms), was often more sensitive in discriminating vibration amplitude than the perceptual judgment of the participants. We quantified how the neuronal performance depended on the integration window: for short windows the neuronal performance was inferior to the performance of the subject. The neuronal performance progressively improved with increasing spike count duration and reached a level significantly above that of the subjects when the integration window was 250 ms or longer. The superiority in performance of individual neurons over observers could reflect a nonoptimal integration window or be due to the presence of noise between the sensory periphery and the cortical decision stage. Additionally, it could indicate that the range of perceptual sensitivity comes at the cost of discrimination through pooling across neurons with different response functions.

Publisher

American Physiological Society

Subject

Physiology,General Neuroscience

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