Literature DB >> 8300898

Effect of unilateral partial cochlear lesions in adult cats on the representation of lesioned and unlesioned cochleas in primary auditory cortex.

R Rajan1, D R Irvine, L Z Wise, P Heil.   

Abstract

We examined the effect of unilateral restricted cochlear lesions in adult cats on the topographic representations ("maps") of the lesioned and unlesioned cochleas in the primary auditory cortex (AI) contralateral to the lesioned cochlea. Frequency (tonotopic) maps were derived by conventional multineuron mapping procedures in anesthetized animals. In confirmation of a study in adult guinea pigs (Robertson and Irvine [1989] J. Comp. Neurol. 282:456-471), we found that 2-11 months after the unilateral cochlear lesion the map of the lesioned cochlea in the contralateral AI was altered so that the AI region in which frequencies with lesion-induced elevations in cochlear neural sensitivity would have been represented was occupied by an enlarged representation of lesion-edge frequencies (i.e., frequencies adjacent to those with elevated cochlear neural sensitivity). Along the tonotopic axis of AI the total representation of lesion-edge frequencies could extend up to approximately 2.6 mm rostal to the area of normal representation of these frequencies. There was no topographic order within this enlarged representation. Examination of threshold sensitivity at the characteristic frequency (CF, frequency to which the neurons were most sensitive) in the reorganized regions of the map of the lesioned cochlea established that the changes in the map reflected a plastic reorganization rather than simply reflecting the residue of prelesion input. In contrast to the change in the map of the lesioned contralateral cochlea, the map of the unlesioned ipsilateral cochlea did not differ from those in normal animals. Thus, in contrast to the normal very good congruency between ipsilateral and contralateral AI maps, in the lesioned animals ipsilateral and contralateral maps differed in the region of AI in which there had been a reorganization of the map of the lesioned cochlea. Outside the region of contralateral map reorganization, ipsilateral and contralateral AI maps remained congruent within normal limits. The difference between the two maps in the region of contralateral map reorganization suggested, in light of the physiology of binaural interactions in the auditory pathway, that the cortical reorganization reflected subcortical changes. Finally, response properties of neuronal clusters within the reorganized map of the lesioned cochlea were compared to normative data with respect to threshold sensitivity at CF, the size of frequency "response areas," and response latencies. In the majority of cases, CF thresholds were similar to normative data. The frequency "response areas" were slightly less sharply tuned than normal, but not significantly. Response latencies were significantly shorter than normal in three animals and significantly longer in one animal.

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Year:  1993        PMID: 8300898     DOI: 10.1002/cne.903380104

Source DB:  PubMed          Journal:  J Comp Neurol        ISSN: 0021-9967            Impact factor:   3.215


  63 in total

1.  Plasticity in adult cat visual cortex (area 17) following circumscribed monocular lesions of all retinal layers.

Authors:  M B Calford; C Wang; V Taglianetti; W J Waleszczyk; W Burke; B Dreher
Journal:  J Physiol       Date:  2000-04-15       Impact factor: 5.182

2.  Dorsal cochlear nucleus response properties following acoustic trauma: response maps and spontaneous activity.

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Journal:  Hear Res       Date:  2006-04-19       Impact factor: 3.208

3.  Neural correlates of an auditory afterimage in primary auditory cortex.

Authors:  A J Noreña; J J Eggermont
Journal:  J Assoc Res Otolaryngol       Date:  2003-09

4.  Massive cross-modal cortical plasticity and the emergence of a new cortical area in developmentally blind mammals.

Authors:  Dianna M Kahn; Leah Krubitzer
Journal:  Proc Natl Acad Sci U S A       Date:  2002-08-05       Impact factor: 11.205

5.  Can homeostatic plasticity in deafferented primary auditory cortex lead to travelling waves of excitation?

Authors:  Michael Chrostowski; Le Yang; Hugh R Wilson; Ian C Bruce; Suzanna Becker
Journal:  J Comput Neurosci       Date:  2010-07-10       Impact factor: 1.621

6.  Tuning out the noise: limbic-auditory interactions in tinnitus.

Authors:  Josef P Rauschecker; Amber M Leaver; Mark Mühlau
Journal:  Neuron       Date:  2010-06-24       Impact factor: 17.173

7.  Hearing thresholds and FMRI of auditory cortex following eighth cranial nerve surgery.

Authors:  Harold Burton; Jill B Firszt; Timothy Holden
Journal:  Otolaryngol Head Neck Surg       Date:  2013-06-26       Impact factor: 3.497

8.  Auditory-nerve rate responses are inconsistent with common hypotheses for the neural correlates of loudness recruitment.

Authors:  Michael G Heinz; John B Issa; Eric D Young
Journal:  J Assoc Res Otolaryngol       Date:  2005-06-10

9.  The clinical characteristics of tinnitus in patients with vestibular schwannoma.

Authors:  David M Baguley; Rachel L Humphriss; Patrick R Axon; David A Moffat
Journal:  Skull Base       Date:  2006-05

Review 10.  Cortical plasticity and preserved function in early blindness.

Authors:  Laurent Renier; Anne G De Volder; Josef P Rauschecker
Journal:  Neurosci Biobehav Rev       Date:  2013-02-20       Impact factor: 8.989

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