Literature DB >> 30236972

Glutamatergic Projections to the Cochlear Nucleus are Redistributed in Tinnitus.

Amarins N Heeringa1, Calvin Wu1, Christopher Chung1, Michael West1, David Martel1, Leslie Liberman2, M Charles Liberman2, Susan E Shore3.   

Abstract

Tinnitus alters auditory-somatosensory plasticity in the cochlear nucleus (CN). Correspondingly, bimodal auditory-somatosensory stimulation treatment attenuates tinnitus, both in animals and humans (Marks et al., 2018). Therefore, we hypothesized that tinnitus is associated with altered somatosensory innervation of the CN. Here, we studied the expression of vesicular glutamate transporters 1 and 2 (VGLUT1 and VGLUT2) in the CN, which reveals glutamatergic projections from the cochlea as well as somatosensory systems to this brainstem auditory center. Guinea pigs were unilaterally exposed to narrowband noise and behaviorally tested for tinnitus using gap-prepulse inhibition of the acoustic startle. Following physiological and behavioral measures, brain sections were immunohistochemically stained for VGLUT1 or VGLUT2. Puncta density was determined for each region of the ipsilateral and contralateral CN. Tinnitus was associated with an ipsilateral upregulation of VGLUT2 puncta density in the granule cell domain (GCD) and anteroventral CN (AVCN). Furthermore, there was a tinnitus-associated interaural asymmetry for VGLUT1 expression in the AVCN and deep layer of the dorsal CN (DCN3), due to contralateral downregulation of VGLUT1 expression. These tinnitus-related glutamatergic imbalances were reversed upon bimodal stimulation treatment. Tinnitus-associated ipsilateral upregulation of VGLUT2-positive projections likely derives from somatosensory projections to the GCD and AVCN. This upregulation may underlie the neurophysiological hallmarks of tinnitus in the CN. Reversing the increased ipsilateral glutamatergic innervation in the CN is likely a key mechanism in treating tinnitus.
Copyright © 2018 IBRO. Published by Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  VGLUT1; VGLUT2; auditory; cross-modal compensation; noise exposure; synaptopathy

Mesh:

Substances:

Year:  2018        PMID: 30236972      PMCID: PMC6191338          DOI: 10.1016/j.neuroscience.2018.09.008

Source DB:  PubMed          Journal:  Neuroscience        ISSN: 0306-4522            Impact factor:   3.590


  61 in total

1.  Cell-specific, spike timing-dependent plasticities in the dorsal cochlear nucleus.

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4.  Identification of differentiation-associated brain-specific phosphate transporter as a second vesicular glutamate transporter (VGLUT2).

Authors:  S Takamori; J S Rhee; C Rosenmund; R Jahn
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5.  Identification of a vesicular glutamate transporter that defines a glutamatergic phenotype in neurons.

Authors:  S Takamori; J S Rhee; C Rosenmund; R Jahn
Journal:  Nature       Date:  2000-09-14       Impact factor: 49.962

Review 6.  GAP-43: an intrinsic determinant of neuronal development and plasticity.

Authors:  L I Benowitz; A Routtenberg
Journal:  Trends Neurosci       Date:  1997-02       Impact factor: 13.837

7.  Mossy fiber projections from the cuneate nucleus to the cochlear nucleus in the rat.

Authors:  D D Wright; D K Ryugo
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Authors:  H Wang; T J Brozoski; J G Turner; L Ling; J L Parrish; L F Hughes; D M Caspary
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9.  Synaptophysin expression during synaptogenesis in the rat cerebellar cortex.

Authors:  N Leclerc; P W Beesley; I Brown; M Colonnier; J W Gurd; T Paladino; R Hawkes
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10.  Altered vesicular glutamate transporter distributions in the mouse cochlear nucleus following cochlear insult.

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