Literature DB >> 8335076

Functional topography of cat primary auditory cortex: responses to frequency-modulated sweeps.

J R Mendelson1, C E Schreiner, M L Sutter, K L Grasse.   

Abstract

The spatial distribution of neuronal responses to frequency-modulated (FM) sweeps was mapped with microelectrodes in the primary auditory cortex (AI) of barbiturate-anesthetized cats. Increasing and decreasing FM sweeps (upward- and downward-directed FM sweeps, respectively) covering a range of 0.25-64.0 kHz were presented at three different rates of frequency change over time (i.e, sweep speed). Using multiunit recordings, the high-frequency domain (between 3.2 and 26.3 kHz) of AI was mapped over most of its dorsoventral extent (as determined by the distribution of the excitatory bandwidth, Q10dB) for all six cases studied. The spatial distributions of the preferred sweep speed and the preferred sweep direction were determined for each case. Neuronal responses for frequency sweeps of different speeds appeared to be systematically distributed along the dorsoventral axis of AI. In the dorsal region, cortical cells typically responded best to fast and/or medium FM sweeps, followed more ventrally by cells that responded best to medium--then slow--, then medium-speed FM sweeps. In the more ventral aspect of AI (which in some cases may also have included cells located in the dorsal region of the second auditory field, AII), neurons generally preferred fast FM sweeps. However, a comparison of maps from different animals showed that there was more variability in the distribution of preferred speed responses in the ventral region of the cortex. The directional preference of units for FM sweeps was determined for the sweep speed producing the strongest response. Direction selectivity appeared to be nonrandomly distributed along the dorsoventral axis of AI. In general, units that responded best to upward-directed FM sweeps were located in the more dorsal and ventral aspects of AI while units that responded best to downward-directed FM sweeps were usually located in the mid-region of AI. Direction selectivity was also determined for multiunit responses at each of the three FM sweep speeds. In general, there was a relatively close agreement between the spatial distributions of direction selectivity determined for the strongest response with those calculated for the fast and medium speeds. The spatial distribution of direction selectivity determined for slow FM sweeps deviated somewhat from that determined for the strongest response. Near the dorsoventral center of the mapped areas, the distribution of units that responded best to downward sweeps tended to overlay the distribution of units that responded best to slow speeds, suggesting some spatial covariance of the two parameters.(ABSTRACT TRUNCATED AT 400 WORDS)

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Year:  1993        PMID: 8335076     DOI: 10.1007/bf00230471

Source DB:  PubMed          Journal:  Exp Brain Res        ISSN: 0014-4819            Impact factor:   1.972


  48 in total

1.  RECEPTIVE FIELDS AND FUNCTIONAL ARCHITECTURE IN TWO NONSTRIATE VISUAL AREAS (18 AND 19) OF THE CAT.

Authors:  D H HUBEL; T N WIESEL
Journal:  J Neurophysiol       Date:  1965-03       Impact factor: 2.714

2.  RESPONSES OF AUDITORY CORTICAL NEURONS TO STIMULI OF CHANGING FREQUENCY.

Authors:  I C WHITFIELD; E F EVANS
Journal:  J Neurophysiol       Date:  1965-07       Impact factor: 2.714

3.  Functional topography of cat primary auditory cortex: representation of tone intensity.

Authors:  C E Schreiner; J R Mendelson; M L Sutter
Journal:  Exp Brain Res       Date:  1992       Impact factor: 1.972

4.  Physiology and topography of neurons with multipeaked tuning curves in cat primary auditory cortex.

Authors:  M L Sutter; C E Schreiner
Journal:  J Neurophysiol       Date:  1991-05       Impact factor: 2.714

5.  Structure and relations of limbic cortex and anterior thalamic nuclei in rabbit and cat.

Authors:  J E ROSE; C N WOOLSEY
Journal:  J Comp Neurol       Date:  1948-12       Impact factor: 3.215

6.  Coding of sounds with rapidly varying spectrum in the cochlear nucleus.

Authors:  A R Moller
Journal:  J Acoust Soc Am       Date:  1974-03       Impact factor: 1.840

7.  Analysis of frequency-modulated and complex sounds by single auditory neurones of bats.

Authors:  N Suga
Journal:  J Physiol       Date:  1968-09       Impact factor: 5.182

8.  Sensitivity of cat primary auditory cortex (AI) neurons to the direction and rate of frequency modulation.

Authors:  J R Mendelson; M S Cynader
Journal:  Brain Res       Date:  1985-02-18       Impact factor: 3.252

9.  Discharge patterns of the primary auditory cortex in cats.

Authors:  M Nomoto
Journal:  Jpn J Physiol       Date:  1980

10.  Different analysis of frequency and amplitude modulations of a continuous tone in the human auditory cortex: a neuromagnetic study.

Authors:  J P Mäkelä; R Hari; A Linnankivi
Journal:  Hear Res       Date:  1987       Impact factor: 3.208

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  31 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.  An extralemniscal component of the mustached bat inferior colliculus selective for direction and rate of linear frequency modulations.

Authors:  M Gordon; W E O'Neill
Journal:  J Comp Neurol       Date:  2000-10-16       Impact factor: 3.215

3.  Frequency modulated sweep responses in the medial geniculate nucleus.

Authors:  B Lui; J R Mendelson
Journal:  Exp Brain Res       Date:  2003-09-05       Impact factor: 1.972

4.  A comparison of monaural and binaural responses to frequency modulated (FM) sweeps in cat primary auditory cortex.

Authors:  J R Mendelson; K L Grasse
Journal:  Exp Brain Res       Date:  1992       Impact factor: 1.972

5.  Background sounds contribute to spectrotemporal plasticity in primary auditory cortex.

Authors:  Raluca Moucha; Pritesh K Pandya; Navzer D Engineer; Daniel L Rathbun; Michael P Kilgard
Journal:  Exp Brain Res       Date:  2004-12-23       Impact factor: 1.972

6.  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

7.  Spectral and temporal processing in rat posterior auditory cortex.

Authors:  Pritesh K Pandya; Daniel L Rathbun; Raluca Moucha; Navzer D Engineer; Michael P Kilgard
Journal:  Cereb Cortex       Date:  2007-07-05       Impact factor: 5.357

8.  Facilitatory mechanisms underlying selectivity for the direction and rate of frequency modulated sweeps in the auditory cortex.

Authors:  Khaleel A Razak; Zoltan M Fuzessery
Journal:  J Neurosci       Date:  2008-09-24       Impact factor: 6.167

9.  Processing of broadband stimuli across A1 layers in young and aged rats.

Authors:  Larry F Hughes; Jeremy G Turner; Jennifer L Parrish; Donald M Caspary
Journal:  Hear Res       Date:  2009-09-20       Impact factor: 3.208

10.  Infant cortical electrophysiology and perception of vowel contrasts.

Authors:  Barbara K Cone
Journal:  Int J Psychophysiol       Date:  2014-06-13       Impact factor: 2.997

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