Noise-induced hearing loss increases the temporal precision of complex envelope coding by auditory-nerve fibers

While changes in cochlear frequency tuning are thought to play an important role in the perceptual difficulties of people with sensorineural hearing loss (SNHL), the possible role of temporal processing deficits remains less clear. Our knowledge of temporal envelope coding in the impaired cochlea is...

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Main Authors: Kenneth Stuart Henry, Sushrut eKale, Michael Gregory Heinz
Format: Article
Language:English
Published: Frontiers Media S.A. 2014-02-01
Series:Frontiers in Systems Neuroscience
Subjects:
Online Access:http://journal.frontiersin.org/Journal/10.3389/fnsys.2014.00020/full
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spelling doaj-211b685e8ef34422ba991223e59de9d32020-11-25T00:17:03ZengFrontiers Media S.A.Frontiers in Systems Neuroscience1662-51372014-02-01810.3389/fnsys.2014.0002075389Noise-induced hearing loss increases the temporal precision of complex envelope coding by auditory-nerve fibersKenneth Stuart Henry0Sushrut eKale1Michael Gregory Heinz2Michael Gregory Heinz3Purdue UniversityPurdue UniversityPurdue UniversityPurdue UniversityWhile changes in cochlear frequency tuning are thought to play an important role in the perceptual difficulties of people with sensorineural hearing loss (SNHL), the possible role of temporal processing deficits remains less clear. Our knowledge of temporal envelope coding in the impaired cochlea is limited to two studies that examined auditory-nerve fiber responses to narrowband amplitude modulated stimuli. In the present study, we used Wiener-kernel analyses of auditory-nerve fiber responses to broadband Gaussian noise in anesthetized chinchillas to quantify changes in temporal envelope coding with noise-induced SNHL. Temporal modulation transfer functions (TMTFs) and temporal windows of sensitivity to acoustic stimulation were computed from 2nd-order Wiener kernels and analyzed to estimate the temporal precision, amplitude, and latency of envelope coding. Noise overexposure was associated with slower (less negative) TMTF roll-off with increasing modulation frequency and reduced temporal window duration. The results show that at equal stimulus sensation level, SNHL increases the temporal precision of envelope coding by 20-30%. Furthermore, SNHL increased the amplitude of envelope coding by 50% in fibers with CFs from 1-2 kHz and decreased mean response latency by 0.4 ms. While a previous study of envelope coding demonstrated a similar increase in response amplitude, the present study is the first to show enhanced temporal precision. This new finding may relate to the use of a more complex stimulus with broad frequency bandwidth and a dynamic temporal envelope. Exaggerated neural coding of fast envelope modulations may contribute to perceptual difficulties in people with SNHL by acting as a distraction from more relevant acoustic cues, especially in fluctuating background noise. Finally, the results underscore the value of studying sensory systems with more natural, real-world stimuli.http://journal.frontiersin.org/Journal/10.3389/fnsys.2014.00020/fullamplitude modulationauditory nervetemporal resolutionsensorineural hearing lossTemporal envelopeWiener-kernel analysis
collection DOAJ
language English
format Article
sources DOAJ
author Kenneth Stuart Henry
Sushrut eKale
Michael Gregory Heinz
Michael Gregory Heinz
spellingShingle Kenneth Stuart Henry
Sushrut eKale
Michael Gregory Heinz
Michael Gregory Heinz
Noise-induced hearing loss increases the temporal precision of complex envelope coding by auditory-nerve fibers
Frontiers in Systems Neuroscience
amplitude modulation
auditory nerve
temporal resolution
sensorineural hearing loss
Temporal envelope
Wiener-kernel analysis
author_facet Kenneth Stuart Henry
Sushrut eKale
Michael Gregory Heinz
Michael Gregory Heinz
author_sort Kenneth Stuart Henry
title Noise-induced hearing loss increases the temporal precision of complex envelope coding by auditory-nerve fibers
title_short Noise-induced hearing loss increases the temporal precision of complex envelope coding by auditory-nerve fibers
title_full Noise-induced hearing loss increases the temporal precision of complex envelope coding by auditory-nerve fibers
title_fullStr Noise-induced hearing loss increases the temporal precision of complex envelope coding by auditory-nerve fibers
title_full_unstemmed Noise-induced hearing loss increases the temporal precision of complex envelope coding by auditory-nerve fibers
title_sort noise-induced hearing loss increases the temporal precision of complex envelope coding by auditory-nerve fibers
publisher Frontiers Media S.A.
series Frontiers in Systems Neuroscience
issn 1662-5137
publishDate 2014-02-01
description While changes in cochlear frequency tuning are thought to play an important role in the perceptual difficulties of people with sensorineural hearing loss (SNHL), the possible role of temporal processing deficits remains less clear. Our knowledge of temporal envelope coding in the impaired cochlea is limited to two studies that examined auditory-nerve fiber responses to narrowband amplitude modulated stimuli. In the present study, we used Wiener-kernel analyses of auditory-nerve fiber responses to broadband Gaussian noise in anesthetized chinchillas to quantify changes in temporal envelope coding with noise-induced SNHL. Temporal modulation transfer functions (TMTFs) and temporal windows of sensitivity to acoustic stimulation were computed from 2nd-order Wiener kernels and analyzed to estimate the temporal precision, amplitude, and latency of envelope coding. Noise overexposure was associated with slower (less negative) TMTF roll-off with increasing modulation frequency and reduced temporal window duration. The results show that at equal stimulus sensation level, SNHL increases the temporal precision of envelope coding by 20-30%. Furthermore, SNHL increased the amplitude of envelope coding by 50% in fibers with CFs from 1-2 kHz and decreased mean response latency by 0.4 ms. While a previous study of envelope coding demonstrated a similar increase in response amplitude, the present study is the first to show enhanced temporal precision. This new finding may relate to the use of a more complex stimulus with broad frequency bandwidth and a dynamic temporal envelope. Exaggerated neural coding of fast envelope modulations may contribute to perceptual difficulties in people with SNHL by acting as a distraction from more relevant acoustic cues, especially in fluctuating background noise. Finally, the results underscore the value of studying sensory systems with more natural, real-world stimuli.
topic amplitude modulation
auditory nerve
temporal resolution
sensorineural hearing loss
Temporal envelope
Wiener-kernel analysis
url http://journal.frontiersin.org/Journal/10.3389/fnsys.2014.00020/full
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AT michaelgregoryheinz noiseinducedhearinglossincreasesthetemporalprecisionofcomplexenvelopecodingbyauditorynervefibers
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