Literature DB >> 31451577

Preserving Inhibition during Developmental Hearing Loss Rescues Auditory Learning and Perception.

Todd M Mowery1, Melissa L Caras2, Syeda I Hassan2, Derek J Wang2, Jordane Dimidschstein3, Gord Fishell4,3, Dan H Sanes2,5,6,7.   

Abstract

Transient periods of childhood hearing loss can induce deficits in aural communication that persist long after auditory thresholds have returned to normal, reflecting long-lasting impairments to the auditory CNS. Here, we asked whether these behavioral deficits could be reversed by treating one of the central impairments: reduction of inhibitory strength. Male and female gerbils received bilateral earplugs to induce a mild, reversible hearing loss during the critical period of auditory cortex development. After earplug removal and the return of normal auditory thresholds, we trained and tested animals on an amplitude modulation detection task. Transient developmental hearing loss induced both learning and perceptual deficits, which were entirely corrected by treatment with a selective GABA reuptake inhibitor (SGRI). To explore the mechanistic basis for these behavioral findings, we recorded the amplitudes of GABAA and GABAB receptor-mediated IPSPs in auditory cortical and thalamic brain slices. In hearing loss-reared animals, cortical IPSP amplitudes were significantly reduced within a few days of hearing loss onset, and this reduction persisted into adulthood. SGRI treatment during the critical period prevented the hearing loss-induced reduction of IPSP amplitudes; but when administered after the critical period, it only restored GABAB receptor-mediated IPSP amplitudes. These effects were driven, in part, by the ability of SGRI to upregulate α1 subunit-dependent GABAA responses. Similarly, SGRI prevented the hearing loss-induced reduction of GABAA and GABAB IPSPs in the ventral nucleus of the medial geniculate body. Thus, by maintaining, or subsequently rescuing, GABAergic transmission in the central auditory thalamocortical pathway, some perceptual and cognitive deficits induced by developmental hearing loss can be prevented.SIGNIFICANCE STATEMENT Even a temporary period of childhood hearing loss can induce communication deficits that persist long after auditory thresholds return to normal. These deficits may arise from long-lasting central impairments, including the loss of synaptic inhibition. Here, we asked whether hearing loss-induced behavioral deficits could be reversed by reinstating normal inhibitory strength. Gerbils reared with transient hearing loss displayed both learning and perceptual deficits. However, when animals were treated with a selective GABA reuptake inhibitor during or after hearing loss, behavioral deficits were entirely corrected. This behavioral recovery was correlated with the return of normal thalamic and cortical inhibitory function. Thus, some perceptual and cognitive deficits induced by developmental hearing loss were prevented with a treatment that rescues a central synaptic property.
Copyright © 2019 the authors.

Entities:  

Keywords:  auditory cortex; auditory perception; hearing loss; plasticity; synaptic inhibition

Mesh:

Year:  2019        PMID: 31451577      PMCID: PMC6794918          DOI: 10.1523/JNEUROSCI.0749-19.2019

Source DB:  PubMed          Journal:  J Neurosci        ISSN: 0270-6474            Impact factor:   6.709


  141 in total

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Authors:  Gardiner von Trapp; Ishita Aloni; Stephen Young; Malcolm N Semple; Dan H Sanes
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7.  Monaural occlusion alters sound localization during a sensitive period in the barn owl.

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8.  GABA-Induced Intracellular Mg2+ Mobilization Integrates and Coordinates Cellular Information Processing for the Maturation of Neural Networks.

Authors:  Ryu Yamanaka; Yutaka Shindo; Kohji Hotta; Koji Suzuki; Kotaro Oka
Journal:  Curr Biol       Date:  2018-12-06       Impact factor: 10.834

9.  Boosting GABA improves impaired auditory temporal resolution in the gerbil.

Authors:  Otto Gleich; Ingo Hamann; Georg M Klump; Malte Kittel; Jürgen Strutz
Journal:  Neuroreport       Date:  2003-10-06       Impact factor: 1.837

Review 10.  Developmental plasticity of spatial hearing following asymmetric hearing loss: context-dependent cue integration and its clinical implications.

Authors:  Peter Keating; Andrew J King
Journal:  Front Syst Neurosci       Date:  2013-12-27
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  8 in total

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3.  Auditory processing remains sensitive to environmental experience during adolescence in a rodent model.

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4.  Cranioplastic Surgery and Acclimation Training for Awake Mouse fMRI.

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Authors:  Minzi Chang; Patrick O Kanold
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6.  Early Sensory Deprivation Leads to Differential Inhibitory Changes in the Striatum During Learning.

Authors:  Nihaad Paraouty; Todd M Mowery
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7.  Disturbed Balance of Inhibitory Signaling Links Hearing Loss and Cognition.

Authors:  Marlies Knipper; Wibke Singer; Kerstin Schwabe; Gisela E Hagberg; Yiwen Li Hegner; Lukas Rüttiger; Christoph Braun; Rüdiger Land
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Authors:  Dora Persic; Maryse E Thomas; Vassilis Pelekanos; David K Ryugo; Anne E Takesian; Katrin Krumbholz; Sonja J Pyott
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  8 in total

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