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Published in: Journal of the Association for Research in Otolaryngology 5/2019

Open Access 01-10-2019 | Evoked Potential | Research Article

Cortical Auditory Evoked Potentials in Response to Frequency Changes with Varied Magnitude, Rate, and Direction

Authors: Bernard M.D. Vonck, Marc J.W. Lammers, Marjolijn van der Waals, Gijsbert A. van Zanten, Huib Versnel

Published in: Journal of the Association for Research in Otolaryngology | Issue 5/2019

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Abstract

Recent literature on cortical auditory evoked potentials has focused on correlations with hearing performance with the aim to develop an objective clinical tool. However, cortical responses depend on the type of stimulus and choice of stimulus parameters. This study investigates cortical auditory evoked potentials to sound changes, so-called acoustic change complexes (ACC), and the effects of varying three stimulus parameters. In twelve normal-hearing subjects, ACC waveforms were evoked by presenting frequency changes with varying magnitude, rate, and direction. The N1 amplitude and latency were strongly affected by magnitude, which is known from the literature. Importantly, both of these N1 variables were also significantly affected by both rate and direction of the frequency change. Larger and earlier N1 peaks were evoked by increasing the magnitude and rate of the frequency change and with downward rather than upward direction of the frequency change. The P2 amplitude increased with magnitude and depended, to a lesser extent, on rate of the frequency change while direction had no effect on this peak. The N1–P2 interval was not affected by any of the stimulus parameters. In conclusion, the ACC is most strongly affected by magnitude and also substantially by rate and direction of the change. These stimulus dependencies should be considered in choosing stimuli for ACCs as objective clinical measure of hearing performance.
Literature
go back to reference Amitay S, Irwin A, Hawkey DJ, Cowan JA, Moore DR (2006) A comparison of adaptive procedures for rapid and reliable threshold assessment and training in naive listeners. J Acoust Soc Am 119:1616–1625PubMedCrossRef Amitay S, Irwin A, Hawkey DJ, Cowan JA, Moore DR (2006) A comparison of adaptive procedures for rapid and reliable threshold assessment and training in naive listeners. J Acoust Soc Am 119:1616–1625PubMedCrossRef
go back to reference Arlinger SD, Jerlvall LB, Ahrén T, Holmgren EC (1976) Slow evoked cortical responses to linear frequency ramps of a continuous pure tone. Acta Physiol Scand 98:412–424PubMedCrossRef Arlinger SD, Jerlvall LB, Ahrén T, Holmgren EC (1976) Slow evoked cortical responses to linear frequency ramps of a continuous pure tone. Acta Physiol Scand 98:412–424PubMedCrossRef
go back to reference Arlinger SD, Jerlvall LB (1979) Results of psychoacoustic and cortical evoked potential experiments using frequency and amplitude modulated stimuli. Scand Audiol Suppl 9:229–239 Arlinger SD, Jerlvall LB (1979) Results of psychoacoustic and cortical evoked potential experiments using frequency and amplitude modulated stimuli. Scand Audiol Suppl 9:229–239
go back to reference Brown CJ, Jeon EK, Chiou LK, Kirby B, Karsten SA, Turner CW, Abbas PJ (2015) Cortical auditory evoked potentials recorded from nucleus hybrid cochlear implant users. Ear Hear 36:723–732PubMedPubMedCentralCrossRef Brown CJ, Jeon EK, Chiou LK, Kirby B, Karsten SA, Turner CW, Abbas PJ (2015) Cortical auditory evoked potentials recorded from nucleus hybrid cochlear implant users. Ear Hear 36:723–732PubMedPubMedCentralCrossRef
go back to reference Brown CJ, Jeon EK, Driscoll V, Mussoi B, Deshpande SB, Gfeller K, Abbas PJ (2017) Effects of long-term musical training on cortical auditory evoked potentials. Ear Hear 38:e74–e84PubMedPubMedCentralCrossRef Brown CJ, Jeon EK, Driscoll V, Mussoi B, Deshpande SB, Gfeller K, Abbas PJ (2017) Effects of long-term musical training on cortical auditory evoked potentials. Ear Hear 38:e74–e84PubMedPubMedCentralCrossRef
go back to reference Chen KH, Small SA (2015) Elicitation of the acoustic change complex to long-duration speech stimuli in four-month-old infants. Int J Otolaryngol, Article ID 562030 2015:1–12CrossRef Chen KH, Small SA (2015) Elicitation of the acoustic change complex to long-duration speech stimuli in four-month-old infants. Int J Otolaryngol, Article ID 562030 2015:1–12CrossRef
go back to reference Chi T, Gao Y, Guyton MC, Ru P, Shamma S (1999) Spectro-temporal modulation transfer functions and speech intelligibility. J Acoust Soc Am 106:2719–2732PubMedCrossRef Chi T, Gao Y, Guyton MC, Ru P, Shamma S (1999) Spectro-temporal modulation transfer functions and speech intelligibility. J Acoust Soc Am 106:2719–2732PubMedCrossRef
go back to reference Dimitrijevic A, Michalewski HJ, Zeng FG, Pratt H, Starr A (2008) Frequency changes in a continuous tone: auditory cortical potentials. Clin Neurophysiol 119:2111–2124PubMedPubMedCentralCrossRef Dimitrijevic A, Michalewski HJ, Zeng FG, Pratt H, Starr A (2008) Frequency changes in a continuous tone: auditory cortical potentials. Clin Neurophysiol 119:2111–2124PubMedPubMedCentralCrossRef
go back to reference Dooley GJ, Moore BC (1988) Duration discrimination of steady and gliding tones: a new method for estimating sensitivity to rate of change. J Acoust Soc Am 84:1332–1337PubMedCrossRef Dooley GJ, Moore BC (1988) Duration discrimination of steady and gliding tones: a new method for estimating sensitivity to rate of change. J Acoust Soc Am 84:1332–1337PubMedCrossRef
go back to reference Dreschler WA, Plomp R (1985) Relations between psychophysical data and speech perception for hearing-impaired subjects. II. J Acoust Soc Am 78:1261–1270PubMedCrossRef Dreschler WA, Plomp R (1985) Relations between psychophysical data and speech perception for hearing-impaired subjects. II. J Acoust Soc Am 78:1261–1270PubMedCrossRef
go back to reference Eggermont JJ, Ponton CW (2002) The neurophysiology of auditory perception: from single units to evoked potentials. Audiol Neurootol 7:71–99PubMedCrossRef Eggermont JJ, Ponton CW (2002) The neurophysiology of auditory perception: from single units to evoked potentials. Audiol Neurootol 7:71–99PubMedCrossRef
go back to reference Friesen LM, Tremblay KL (2006) Acoustic change complexes recorded in adult cochlear implant listeners. Ear Hear 27:678–685PubMedCrossRef Friesen LM, Tremblay KL (2006) Acoustic change complexes recorded in adult cochlear implant listeners. Ear Hear 27:678–685PubMedCrossRef
go back to reference Gordon M, Poeppel D (2002) Inequality in identification of direction of frequency change (up vs. down) for rapid frequency modulated sweeps. Acoust Res Lett Online 3:29–34CrossRef Gordon M, Poeppel D (2002) Inequality in identification of direction of frequency change (up vs. down) for rapid frequency modulated sweeps. Acoust Res Lett Online 3:29–34CrossRef
go back to reference Harris KC, Mills JH, Dubno JR (2007) Electrophysiologic correlates of intensity discrimination in cortical evoked potentials of younger and older adults. Hear Res 228:58–68PubMedPubMedCentralCrossRef Harris KC, Mills JH, Dubno JR (2007) Electrophysiologic correlates of intensity discrimination in cortical evoked potentials of younger and older adults. Hear Res 228:58–68PubMedPubMedCentralCrossRef
go back to reference Harris KC, Mills JH, He NJ, Dubno JR (2008) Age-related differences in sensitivity to small changes in frequency assessed with cortical evoked potentials. Hear Res 243:47–56PubMedPubMedCentralCrossRef Harris KC, Mills JH, He NJ, Dubno JR (2008) Age-related differences in sensitivity to small changes in frequency assessed with cortical evoked potentials. Hear Res 243:47–56PubMedPubMedCentralCrossRef
go back to reference He S, Grose JH, Buchman CA (2012) Auditory discrimination: the relationship between psychophysical and electrophysiological measures. Int J Audiol 51:771–782PubMedPubMedCentralCrossRef He S, Grose JH, Buchman CA (2012) Auditory discrimination: the relationship between psychophysical and electrophysiological measures. Int J Audiol 51:771–782PubMedPubMedCentralCrossRef
go back to reference Heil P, Rajan R, Irvine DRF (1992) Sensitivity of neurons in cat primary auditory cortex to tones and frequency-modulated stimuli. I. Effects of variation of stimulus parameters. Hear Res 63:108–134PubMedCrossRef Heil P, Rajan R, Irvine DRF (1992) Sensitivity of neurons in cat primary auditory cortex to tones and frequency-modulated stimuli. I. Effects of variation of stimulus parameters. Hear Res 63:108–134PubMedCrossRef
go back to reference Horst JW (1987) Frequency discrimination of complex signals, frequency selectivity, and speech perception in hearing-impaired subjects. J Acoust Soc Am 82:874–885PubMedCrossRef Horst JW (1987) Frequency discrimination of complex signals, frequency selectivity, and speech perception in hearing-impaired subjects. J Acoust Soc Am 82:874–885PubMedCrossRef
go back to reference Kowalski N, Versnel H, Shamma S (1995) Comparison of responses in the anterior and primary auditory fields of the ferret cortex. J Neurophysiol 73:1513–1523PubMedCrossRef Kowalski N, Versnel H, Shamma S (1995) Comparison of responses in the anterior and primary auditory fields of the ferret cortex. J Neurophysiol 73:1513–1523PubMedCrossRef
go back to reference Luo H, Boemio A, Gordon M, Poeppel D (2007) The perception of FM sweeps by Chinese and English listeners. Hear Res 224:75–83CrossRefPubMed Luo H, Boemio A, Gordon M, Poeppel D (2007) The perception of FM sweeps by Chinese and English listeners. Hear Res 224:75–83CrossRefPubMed
go back to reference Martin BA, Boothroyd A (2000) Cortical, auditory, evoked potentials in response to changes of spectrum and amplitude. J Acoust Soc Am 107:2155–2161PubMedCrossRef Martin BA, Boothroyd A (2000) Cortical, auditory, evoked potentials in response to changes of spectrum and amplitude. J Acoust Soc Am 107:2155–2161PubMedCrossRef
go back to reference Martin BA, Tremblay KL, Korczak P (2008) Speech evoked potentials: from the laboratory to the clinic. Ear Hear 29:285–313PubMedCrossRef Martin BA, Tremblay KL, Korczak P (2008) Speech evoked potentials: from the laboratory to the clinic. Ear Hear 29:285–313PubMedCrossRef
go back to reference Martin BA, Tremblay KL, Stapells DR (2007) Principles and applications of cortical auditory evoked potentials. In: Burkard RF, Don M, Eggermont JJ (eds) Auditory evoked potentials: basic principles and clinical application. Lippincott Williams and Wilkins, Philadelphia, pp 482–507 Martin BA, Tremblay KL, Stapells DR (2007) Principles and applications of cortical auditory evoked potentials. In: Burkard RF, Don M, Eggermont JJ (eds) Auditory evoked potentials: basic principles and clinical application. Lippincott Williams and Wilkins, Philadelphia, pp 482–507
go back to reference Maiste A, Picton T (1989) Human auditory evoked potentials to frequency-modulated tones. Ear Hear 10:153–160PubMedCrossRef Maiste A, Picton T (1989) Human auditory evoked potentials to frequency-modulated tones. Ear Hear 10:153–160PubMedCrossRef
go back to reference McCandless GA, Rose DE (1970) Evoked cortical responses to stimulus change. J Speech Hear Res 13:624–634PubMedCrossRef McCandless GA, Rose DE (1970) Evoked cortical responses to stimulus change. J Speech Hear Res 13:624–634PubMedCrossRef
go back to reference Näätänen R, Picton T (1987) The N1 wave of the human electric and magnetic response to sound: a review and an analysis of the component structure. Psychophysiology 24:375–415PubMedCrossRef Näätänen R, Picton T (1987) The N1 wave of the human electric and magnetic response to sound: a review and an analysis of the component structure. Psychophysiology 24:375–415PubMedCrossRef
go back to reference Nelken I, Versnel H (2000) Responses to linear and logarithmic frequency-modulated sweeps in ferret primary auditory cortex. Eur J Neurosci 12:549–562PubMedCrossRef Nelken I, Versnel H (2000) Responses to linear and logarithmic frequency-modulated sweeps in ferret primary auditory cortex. Eur J Neurosci 12:549–562PubMedCrossRef
go back to reference Noordhoek IM, Houtgast T, Festen JM (2001) Relations between intelligibility of narrow-band speech and auditory functions, both in the 1-kHz frequency region. J Acoust Soc Am 109:1197–1212PubMedCrossRef Noordhoek IM, Houtgast T, Festen JM (2001) Relations between intelligibility of narrow-band speech and auditory functions, both in the 1-kHz frequency region. J Acoust Soc Am 109:1197–1212PubMedCrossRef
go back to reference Ostroff JM, Martin BA, Boothroyd A (1998) Cortical evoked response to acoustic change within a syllable. Ear Hear 19:290–297PubMedCrossRef Ostroff JM, Martin BA, Boothroyd A (1998) Cortical evoked response to acoustic change within a syllable. Ear Hear 19:290–297PubMedCrossRef
go back to reference Papakonstantinou A, Strelcyk O, Dau T (2011) Relations between perceptual measures of temporal processing, auditory-evoked brainstem responses and speech intelligibility in noise. Hear Res 280:30–37PubMedCrossRef Papakonstantinou A, Strelcyk O, Dau T (2011) Relations between perceptual measures of temporal processing, auditory-evoked brainstem responses and speech intelligibility in noise. Hear Res 280:30–37PubMedCrossRef
go back to reference Pratt H, Starr A, Michalewski HJ, Dimitrijevic A, Bleich N, Mittelman N (2009) Auditory-evoked potentials to frequency increase and decrease of high- and low-frequency tones. Clin Neurophysiol 120:360–373PubMedCrossRef Pratt H, Starr A, Michalewski HJ, Dimitrijevic A, Bleich N, Mittelman N (2009) Auditory-evoked potentials to frequency increase and decrease of high- and low-frequency tones. Clin Neurophysiol 120:360–373PubMedCrossRef
go back to reference Schouten ME, Pols LC (1985) Identification and discrimination of sweep tones. Percept Psychophys 37:369–376PubMedCrossRef Schouten ME, Pols LC (1985) Identification and discrimination of sweep tones. Percept Psychophys 37:369–376PubMedCrossRef
go back to reference Sek A, Moore BC (1995) Frequency discrimination as a function of frequency, measured in several ways. J Acoust Soc Am 97:2479–2486PubMedCrossRef Sek A, Moore BC (1995) Frequency discrimination as a function of frequency, measured in several ways. J Acoust Soc Am 97:2479–2486PubMedCrossRef
go back to reference Shamma S, Fleshman J, Wiser R, Versnel H (1993) Organization of response areas in ferret primary auditory cortex. J Neurophysiol 69:367–383PubMedCrossRef Shamma S, Fleshman J, Wiser R, Versnel H (1993) Organization of response areas in ferret primary auditory cortex. J Neurophysiol 69:367–383PubMedCrossRef
go back to reference Strelcyk O, Dau T (2009) Relations between frequency selectivity, temporal fine-structure processing, and speech reception in impaired hearing. J Acoust Soc Am 125:3328–3345PubMedCrossRef Strelcyk O, Dau T (2009) Relations between frequency selectivity, temporal fine-structure processing, and speech reception in impaired hearing. J Acoust Soc Am 125:3328–3345PubMedCrossRef
go back to reference Tian B, Rauschecker JP (2004) Processing of frequency-modulated sounds in the lateral auditory belt cortex of the rhesus monkey. J Neurophysiol 92:2993–3013PubMedCrossRef Tian B, Rauschecker JP (2004) Processing of frequency-modulated sounds in the lateral auditory belt cortex of the rhesus monkey. J Neurophysiol 92:2993–3013PubMedCrossRef
go back to reference Tremblay KL, Billings CJ, Friesen LM, Souza PE (2006) Neural representation of amplified speech sounds. Ear Hear 27:93–103PubMedCrossRef Tremblay KL, Billings CJ, Friesen LM, Souza PE (2006) Neural representation of amplified speech sounds. Ear Hear 27:93–103PubMedCrossRef
go back to reference Tremblay KL, Friesen L, Martin BA, Wright R (2003) Test-retest reliability of cortical evoked potentials using naturally produced speech sounds. Ear Hear 24:225–232PubMedCrossRef Tremblay KL, Friesen L, Martin BA, Wright R (2003) Test-retest reliability of cortical evoked potentials using naturally produced speech sounds. Ear Hear 24:225–232PubMedCrossRef
go back to reference Trujillo M, Measor K, Carrasco MM, Razak KA (2011) Selectivity of frequency-modulated sweeps in the mouse auditory cortex. J Neurophysiol 106:2825–2837PubMedCrossRef Trujillo M, Measor K, Carrasco MM, Razak KA (2011) Selectivity of frequency-modulated sweeps in the mouse auditory cortex. J Neurophysiol 106:2825–2837PubMedCrossRef
go back to reference Wang X, Lu T, Snider RK, Liang L (2005) Sustained firing in auditory cortex evoked by preferred stimuli. Nature 435:342–346 Wang X, Lu T, Snider RK, Liang L (2005) Sustained firing in auditory cortex evoked by preferred stimuli. Nature 435:342–346
Metadata
Title
Cortical Auditory Evoked Potentials in Response to Frequency Changes with Varied Magnitude, Rate, and Direction
Authors
Bernard M.D. Vonck
Marc J.W. Lammers
Marjolijn van der Waals
Gijsbert A. van Zanten
Huib Versnel
Publication date
01-10-2019
Publisher
Springer US
Published in
Journal of the Association for Research in Otolaryngology / Issue 5/2019
Print ISSN: 1525-3961
Electronic ISSN: 1438-7573
DOI
https://doi.org/10.1007/s10162-019-00726-2

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