Cargando…

The Physiological Bases of Hidden Noise-Induced Hearing Loss: Protocol for a Functional Neuroimaging Study

BACKGROUND: Rodent studies indicate that noise exposure can cause permanent damage to synapses between inner hair cells and high-threshold auditory nerve fibers, without permanently altering threshold sensitivity. These demonstrations of what is commonly known as hidden hearing loss have been confir...

Descripción completa

Detalles Bibliográficos
Autores principales: Dewey, Rebecca Susan, Hall, Deborah A, Guest, Hannah, Prendergast, Garreth, Plack, Christopher J, Francis, Susan T
Formato: Online Artículo Texto
Lenguaje:English
Publicado: JMIR Publications 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5866298/
https://www.ncbi.nlm.nih.gov/pubmed/29523503
http://dx.doi.org/10.2196/resprot.9095
_version_ 1783308823019126784
author Dewey, Rebecca Susan
Hall, Deborah A
Guest, Hannah
Prendergast, Garreth
Plack, Christopher J
Francis, Susan T
author_facet Dewey, Rebecca Susan
Hall, Deborah A
Guest, Hannah
Prendergast, Garreth
Plack, Christopher J
Francis, Susan T
author_sort Dewey, Rebecca Susan
collection PubMed
description BACKGROUND: Rodent studies indicate that noise exposure can cause permanent damage to synapses between inner hair cells and high-threshold auditory nerve fibers, without permanently altering threshold sensitivity. These demonstrations of what is commonly known as hidden hearing loss have been confirmed in several rodent species, but the implications for human hearing are unclear. OBJECTIVE: Our Medical Research Council–funded program aims to address this unanswered question, by investigating functional consequences of the damage to the human peripheral and central auditory nervous system that results from cumulative lifetime noise exposure. Behavioral and neuroimaging techniques are being used in a series of parallel studies aimed at detecting hidden hearing loss in humans. The planned neuroimaging study aims to (1) identify central auditory biomarkers associated with hidden hearing loss; (2) investigate whether there are any additive contributions from tinnitus or diminished sound tolerance, which are often comorbid with hearing problems; and (3) explore the relation between subcortical functional magnetic resonance imaging (fMRI) measures and the auditory brainstem response (ABR). METHODS: Individuals aged 25 to 40 years with pure tone hearing thresholds ≤20 dB hearing level over the range 500 Hz to 8 kHz and no contraindications for MRI or signs of ear disease will be recruited into the study. Lifetime noise exposure will be estimated using an in-depth structured interview. Auditory responses throughout the central auditory system will be recorded using ABR and fMRI. Analyses will focus predominantly on correlations between lifetime noise exposure and auditory response characteristics. RESULTS: This paper reports the study protocol. The funding was awarded in July 2013. Enrollment for the study described in this protocol commenced in February 2017 and was completed in December 2017. Results are expected in 2018. CONCLUSIONS: This challenging and comprehensive study will have the potential to impact diagnostic procedures for hidden hearing loss, enabling early identification of noise-induced auditory damage via the detection of changes in central auditory processing. Consequently, this will generate the opportunity to give personalized advice regarding provision of ear defense and monitoring of further damage, thus reducing the incidence of noise-induced hearing loss.
format Online
Article
Text
id pubmed-5866298
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher JMIR Publications
record_format MEDLINE/PubMed
spelling pubmed-58662982018-04-02 The Physiological Bases of Hidden Noise-Induced Hearing Loss: Protocol for a Functional Neuroimaging Study Dewey, Rebecca Susan Hall, Deborah A Guest, Hannah Prendergast, Garreth Plack, Christopher J Francis, Susan T JMIR Res Protoc Protocol BACKGROUND: Rodent studies indicate that noise exposure can cause permanent damage to synapses between inner hair cells and high-threshold auditory nerve fibers, without permanently altering threshold sensitivity. These demonstrations of what is commonly known as hidden hearing loss have been confirmed in several rodent species, but the implications for human hearing are unclear. OBJECTIVE: Our Medical Research Council–funded program aims to address this unanswered question, by investigating functional consequences of the damage to the human peripheral and central auditory nervous system that results from cumulative lifetime noise exposure. Behavioral and neuroimaging techniques are being used in a series of parallel studies aimed at detecting hidden hearing loss in humans. The planned neuroimaging study aims to (1) identify central auditory biomarkers associated with hidden hearing loss; (2) investigate whether there are any additive contributions from tinnitus or diminished sound tolerance, which are often comorbid with hearing problems; and (3) explore the relation between subcortical functional magnetic resonance imaging (fMRI) measures and the auditory brainstem response (ABR). METHODS: Individuals aged 25 to 40 years with pure tone hearing thresholds ≤20 dB hearing level over the range 500 Hz to 8 kHz and no contraindications for MRI or signs of ear disease will be recruited into the study. Lifetime noise exposure will be estimated using an in-depth structured interview. Auditory responses throughout the central auditory system will be recorded using ABR and fMRI. Analyses will focus predominantly on correlations between lifetime noise exposure and auditory response characteristics. RESULTS: This paper reports the study protocol. The funding was awarded in July 2013. Enrollment for the study described in this protocol commenced in February 2017 and was completed in December 2017. Results are expected in 2018. CONCLUSIONS: This challenging and comprehensive study will have the potential to impact diagnostic procedures for hidden hearing loss, enabling early identification of noise-induced auditory damage via the detection of changes in central auditory processing. Consequently, this will generate the opportunity to give personalized advice regarding provision of ear defense and monitoring of further damage, thus reducing the incidence of noise-induced hearing loss. JMIR Publications 2018-03-09 /pmc/articles/PMC5866298/ /pubmed/29523503 http://dx.doi.org/10.2196/resprot.9095 Text en ©Rebecca Susan Dewey, Deborah A Hall, Hannah Guest, Garreth Prendergast, Christopher J Plack, Susan T Francis. Originally published in JMIR Research Protocols (http://www.researchprotocols.org), 09.03.2018. https://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work, first published in JMIR Research Protocols, is properly cited. The complete bibliographic information, a link to the original publication on http://www.researchprotocols.org, as well as this copyright and license information must be included.
spellingShingle Protocol
Dewey, Rebecca Susan
Hall, Deborah A
Guest, Hannah
Prendergast, Garreth
Plack, Christopher J
Francis, Susan T
The Physiological Bases of Hidden Noise-Induced Hearing Loss: Protocol for a Functional Neuroimaging Study
title The Physiological Bases of Hidden Noise-Induced Hearing Loss: Protocol for a Functional Neuroimaging Study
title_full The Physiological Bases of Hidden Noise-Induced Hearing Loss: Protocol for a Functional Neuroimaging Study
title_fullStr The Physiological Bases of Hidden Noise-Induced Hearing Loss: Protocol for a Functional Neuroimaging Study
title_full_unstemmed The Physiological Bases of Hidden Noise-Induced Hearing Loss: Protocol for a Functional Neuroimaging Study
title_short The Physiological Bases of Hidden Noise-Induced Hearing Loss: Protocol for a Functional Neuroimaging Study
title_sort physiological bases of hidden noise-induced hearing loss: protocol for a functional neuroimaging study
topic Protocol
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5866298/
https://www.ncbi.nlm.nih.gov/pubmed/29523503
http://dx.doi.org/10.2196/resprot.9095
work_keys_str_mv AT deweyrebeccasusan thephysiologicalbasesofhiddennoiseinducedhearinglossprotocolforafunctionalneuroimagingstudy
AT halldeboraha thephysiologicalbasesofhiddennoiseinducedhearinglossprotocolforafunctionalneuroimagingstudy
AT guesthannah thephysiologicalbasesofhiddennoiseinducedhearinglossprotocolforafunctionalneuroimagingstudy
AT prendergastgarreth thephysiologicalbasesofhiddennoiseinducedhearinglossprotocolforafunctionalneuroimagingstudy
AT plackchristopherj thephysiologicalbasesofhiddennoiseinducedhearinglossprotocolforafunctionalneuroimagingstudy
AT francissusant thephysiologicalbasesofhiddennoiseinducedhearinglossprotocolforafunctionalneuroimagingstudy
AT deweyrebeccasusan physiologicalbasesofhiddennoiseinducedhearinglossprotocolforafunctionalneuroimagingstudy
AT halldeboraha physiologicalbasesofhiddennoiseinducedhearinglossprotocolforafunctionalneuroimagingstudy
AT guesthannah physiologicalbasesofhiddennoiseinducedhearinglossprotocolforafunctionalneuroimagingstudy
AT prendergastgarreth physiologicalbasesofhiddennoiseinducedhearinglossprotocolforafunctionalneuroimagingstudy
AT plackchristopherj physiologicalbasesofhiddennoiseinducedhearinglossprotocolforafunctionalneuroimagingstudy
AT francissusant physiologicalbasesofhiddennoiseinducedhearinglossprotocolforafunctionalneuroimagingstudy