Rate and timing of cortical responses driven by separate sensory channels

Author:

Saal Hannes P1,Harvey Michael A12,Bensmaia Sliman J13

Affiliation:

1. Department of Organismal Biology and Anatomy, University of Chicago, Chicago, United States

2. Department of Neurological Surgery, Vanderbilt University Medical Center, Nashville, United States

3. Committee on Computational Neuroscience, University of Chicago, Chicago, United States

Abstract

The sense of touch comprises multiple sensory channels that each conveys characteristic signals during interactions with objects. These neural signals must then be integrated in such a way that behaviorally relevant information about the objects is preserved. To understand the process of integration, we implement a simple computational model that describes how the responses of neurons in somatosensory cortex—recorded from awake, behaving monkeys—are shaped by the peripheral input, reconstructed using simulations of neuronal populations that reproduce natural spiking responses in the nerve with millisecond precision. First, we find that the strength of cortical responses is driven by one population of nerve fibers (rapidly adapting) whereas the timing of cortical responses is shaped by the other (Pacinian). Second, we show that input from these sensory channels is integrated in an optimal fashion that exploits the disparate response behaviors of different fiber types.

Funder

National Science Foundation

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

Reference55 articles.

1. The sensory neurons of touch;Abraira;Neuron,2013

2. Single tactile afferents outperform human subjects in a vibrotactile intensity discrimination task;Arabzadeh;Journal of Neurophysiology,2014

3. The vibrations of texture;BensmaÏa;Somatosensory & Motor Research,2003

4. Pacinian representations of fine surface texture;Bensmaïa;Perception & Psychophysics,2005

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