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Auditory Brainstem Mechanisms Likely Compensate for Self-imposed Peripheral Inhibition

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Journal Sci Rep
Specialty Science
Date 2023 Aug 4
PMID 37542191
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Abstract

Feedback networks in the brain regulate downstream auditory function as peripheral as the cochlea. However, the upstream neural consequences of this peripheral regulation are less understood. For instance, the medial olivocochlear reflex (MOCR) in the brainstem causes putative attenuation of responses generated in the cochlea and cortex, but those generated in the brainstem are perplexingly unaffected. Based on known neural circuitry, we hypothesized that the inhibition of peripheral input is compensated for by positive feedback in the brainstem over time. We predicted that the inhibition could be captured at the brainstem with shorter (1.5 s) than previously employed long duration (240 s) stimuli where this inhibition is likely compensated for. Results from 16 normal-hearing human listeners support our hypothesis in that when the MOCR is activated, there is a robust reduction of responses generated at the periphery, brainstem, and cortex for short-duration stimuli. Such inhibition at the brainstem, however, diminishes for long-duration stimuli suggesting some compensatory mechanisms at play. Our findings provide a novel non-invasive window into potential gain compensation mechanisms in the brainstem that may have implications for auditory disorders such as tinnitus. Our methodology will be useful in the evaluation of efferent function in individuals with hearing loss.

Citing Articles

Effects of contralateral noise on envelope-following responses, auditory-nerve compound action potentials, and otoacoustic emissions measured simultaneously.

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References
1.
Mulders W, Harvey A, Robertson D . Electrically evoked responses in onset chopper neurons in guinea pig cochlear nucleus. J Neurophysiol. 2007; 97(5):3288-97. DOI: 10.1152/jn.01148.2006. View

2.
Cao X, Lin L, Sugden A, Connors B, Oertel D . Nitric Oxide-Mediated Plasticity of Interconnections Between T-Stellate cells of the Ventral Cochlear Nucleus Generate Positive Feedback and Constitute a Central Gain Control in the Auditory System. J Neurosci. 2019; 39(31):6095-6107. PMC: 6668202. DOI: 10.1523/JNEUROSCI.0177-19.2019. View

3.
Feeney M, Keefe D . Acoustic reflex detection using wide-band acoustic reflectance, admittance, and power measurements. J Speech Lang Hear Res. 1999; 42(5):1029-41. DOI: 10.1044/jslhr.4205.1029. View

4.
Mulders W, Winter I, Robertson D . Dual action of olivocochlear collaterals in the guinea pig cochlear nucleus. Hear Res. 2002; 174(1-2):264-80. DOI: 10.1016/s0378-5955(02)00701-3. View

5.
Benson T, Brown M . Synapses formed by olivocochlear axon branches in the mouse cochlear nucleus. J Comp Neurol. 1990; 295(1):52-70. DOI: 10.1002/cne.902950106. View