Literature DB >> 9449823

Frequency resolution and spectral integration (critical band analysis) in single units of the cat primary auditory cortex.

G Ehret1, C E Schreiner.   

Abstract

Frequency resolution and spectral filtering in the cat primary auditory cortex (AI) were mapped by extracellular recordings of tone responses in white noise of various bandwidths. Single-tone excitatory tuning curves, critical bandwidths, and critical ratios were determined as a function of neuronal characteristic frequency and tone level. Single-tone excitatory tuning curves are inadequate measures of frequency resolution and spectral filtering in the AI, because their shapes (in most neurons) deviated substantially from the shapes of "tuning curves for complex sound analysis", the curves determined by the band limits of the critical bandwidths. Perceptual characteristics of spectral filtering (intensity independence and frequency dependence) were found in average critical bandwidths of neurons from the central and ventral AI. The highest frequency resolution (smallest critical bandwidths) reached by neurons in the central and ventral AI equaled the psychophysical frequency resolution. The dorsal AI is special, since most neurons there had response properties incompatible with psychophysical features of frequency resolution. Perceptual characteristics of critical ratios were not found in the average neuronal responses in any area of the AI. It seems that spectral integration in the way proposed to be the basis for the perception of tones in noise is not present at the level of the AI.

Mesh:

Year:  1997        PMID: 9449823     DOI: 10.1007/s003590050146

Source DB:  PubMed          Journal:  J Comp Physiol A            Impact factor:   1.836


  15 in total

1.  Modular organization of intrinsic connections associated with spectral tuning in cat auditory cortex.

Authors:  H L Read; J A Winer; C E Schreiner
Journal:  Proc Natl Acad Sci U S A       Date:  2001-07-03       Impact factor: 11.205

2.  Spectral integration plasticity in cat auditory cortex induced by perceptual training.

Authors:  M Diane Keeling; Barbara M Calhoun; Katharina Krüger; Daniel B Polley; Christoph E Schreiner
Journal:  Exp Brain Res       Date:  2007-09-21       Impact factor: 1.972

3.  Responses to deviants are modulated by subthreshold variability of the standard.

Authors:  Luba Daikhin; Merav Ahissar
Journal:  Psychophysiology       Date:  2011-09-07       Impact factor: 4.016

Review 4.  Rodent auditory perception: Critical band limitations and plasticity.

Authors:  J King; M Insanally; M Jin; A R O Martins; J A D'amour; R C Froemke
Journal:  Neuroscience       Date:  2015-03-28       Impact factor: 3.590

5.  Fine frequency tuning in monkey auditory cortex and thalamus.

Authors:  Edward L Bartlett; Srivatsun Sadagopan; Xiaoqin Wang
Journal:  J Neurophysiol       Date:  2011-05-25       Impact factor: 2.714

6.  Distinct core thalamocortical pathways to central and dorsal primary auditory cortex.

Authors:  Heather L Read; David W Nauen; Monty A Escabí; Lee M Miller; Christoph E Schreiner; Jeffery A Winer
Journal:  Hear Res       Date:  2010-12-08       Impact factor: 3.208

Review 7.  Intensity-invariant coding in the auditory system.

Authors:  Dennis L Barbour
Journal:  Neurosci Biobehav Rev       Date:  2011-04-16       Impact factor: 8.989

8.  Ultra-fine frequency tuning revealed in single neurons of human auditory cortex.

Authors:  Y Bitterman; R Mukamel; R Malach; I Fried; I Nelken
Journal:  Nature       Date:  2008-01-10       Impact factor: 49.962

9.  Auditory cortical responses elicited in awake primates by random spectrum stimuli.

Authors:  Dennis L Barbour; Xiaoqin Wang
Journal:  J Neurosci       Date:  2003-08-06       Impact factor: 6.167

10.  Effects of Signal-to-Noise Ratio on Auditory Cortical Frequency Processing.

Authors:  Magnus J Teschner; Bryan A Seybold; Brian J Malone; Jana Hüning; Christoph E Schreiner
Journal:  J Neurosci       Date:  2016-03-02       Impact factor: 6.167

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