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Detecting Cochlear Synaptopathy Through Curvature Quantification of the Auditory Brainstem Response.

Publication ,  Journal Article
Bao, J; Jegede, SL; Hawks, JW; Dade, B; Guan, Q; Middaugh, S; Qiu, Z; Levina, A; Tsai, T-H
Published in: Front Cell Neurosci
2022

The sound-evoked electrical compound potential known as auditory brainstem response (ABR) represents the firing of a heterogenous population of auditory neurons in response to sound stimuli, and is often used for clinical diagnosis based on wave amplitude and latency. However, recent ABR applications to detect human cochlear synaptopathy have led to inconsistent results, mainly due to the high variability of ABR wave-1 amplitude. Here, rather than focusing on the amplitude of ABR wave 1, we evaluated the use of ABR wave curvature to detect cochlear synaptic loss. We first compared four curvature quantification methods using simulated ABR waves, and identified that the cubic spline method using five data points produced the most accurate quantification. We next evaluated this quantification method with ABR data from an established mouse model with cochlear synaptopathy. The data clearly demonstrated that curvature measurement is more sensitive and consistent in identifying cochlear synaptic loss in mice compared to the amplitude and latency measurements. We further tested this curvature method in a different mouse model presenting with otitis media. The change in curvature profile due to middle ear infection in otitis media is different from the profile of mice with cochlear synaptopathy. Thus, our study suggests that curvature quantification can be used to address the current ABR variability issue, and may lead to additional applications in the clinic diagnosis of hearing disorders.

Duke Scholars

Published In

Front Cell Neurosci

DOI

ISSN

1662-5102

Publication Date

2022

Volume

16

Start / End Page

851500

Location

Switzerland

Related Subject Headings

  • 5202 Biological psychology
  • 3209 Neurosciences
  • 3101 Biochemistry and cell biology
  • 1109 Neurosciences
  • 0601 Biochemistry and Cell Biology
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Bao, J., Jegede, S. L., Hawks, J. W., Dade, B., Guan, Q., Middaugh, S., … Tsai, T.-H. (2022). Detecting Cochlear Synaptopathy Through Curvature Quantification of the Auditory Brainstem Response. Front Cell Neurosci, 16, 851500. https://doi.org/10.3389/fncel.2022.851500
Bao, Jianxin, Segun Light Jegede, John W. Hawks, Bethany Dade, Qiang Guan, Samantha Middaugh, Ziyu Qiu, Anna Levina, and Tsung-Heng Tsai. “Detecting Cochlear Synaptopathy Through Curvature Quantification of the Auditory Brainstem Response.Front Cell Neurosci 16 (2022): 851500. https://doi.org/10.3389/fncel.2022.851500.
Bao J, Jegede SL, Hawks JW, Dade B, Guan Q, Middaugh S, et al. Detecting Cochlear Synaptopathy Through Curvature Quantification of the Auditory Brainstem Response. Front Cell Neurosci. 2022;16:851500.
Bao, Jianxin, et al. “Detecting Cochlear Synaptopathy Through Curvature Quantification of the Auditory Brainstem Response.Front Cell Neurosci, vol. 16, 2022, p. 851500. Pubmed, doi:10.3389/fncel.2022.851500.
Bao J, Jegede SL, Hawks JW, Dade B, Guan Q, Middaugh S, Qiu Z, Levina A, Tsai T-H. Detecting Cochlear Synaptopathy Through Curvature Quantification of the Auditory Brainstem Response. Front Cell Neurosci. 2022;16:851500.

Published In

Front Cell Neurosci

DOI

ISSN

1662-5102

Publication Date

2022

Volume

16

Start / End Page

851500

Location

Switzerland

Related Subject Headings

  • 5202 Biological psychology
  • 3209 Neurosciences
  • 3101 Biochemistry and cell biology
  • 1109 Neurosciences
  • 0601 Biochemistry and Cell Biology