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Strickland, E. A.

Publications and source records attributed to Strickland, E. A..

2 recordsLinked to original sources

Assessment of Contralateral Efferent Effects in Human Via ECochG

Efferent projections from the brainstem to the inner ear are well-described anatomically and physiologically but their precise function remains debated. The medial olivocochlear (MOC) system and its reflex, the MOCR, have been particularly well studied. In animals, anatomical and physiological data are fine-grained and extensive and suggest an important role for the MOCR in anti-masking e.g. to improve the detection of tones in background noise. Extensive behavioral studies in human support this role, but direct linking of behavioral paradigms to the MOCR is challenging because of the difficulty in obtaining appropriate human neural measures. We developed a new approach in which mass potentials were recorded near the cochlea of normal hearing and awake human volunteers to increase the signal-to-noise (SNR) ratio, and examined whether broadband noise to the contralateral ear elicited MOCR anti-masking effects as reported in animals. Probing the mass potential to the onset of brief tones at 4 and 6 kHz, convincing anti-masking or suppressive effects consistent with the MOCR were not detected. We then changed the recording technique to examine the neural phase-locked contribution to the mass potential in response to long, low-frequency tones, and found that contralateral sound suppressed neural responses in a systematic and progressive manner. We followed up with psychophysical experiments in which we found that contralateral noise elevated detection threshold for tones up to 4 kHz. Our study provides a new way to study efferent effects in the human peripheral auditory system and shows that contralateral efferent effects are biased towards low frequencies.

neuroscience↗

Auditory-nerve Model including Efferent Dynamic Gain Control with Inputs from Cochlear Nucleus and Inferior Colliculus

We developed an auditory model with a time-varying, gain-control signal based on the physiology of the efferent system and the sub-cortical neural pathways. The medial olivocochlear (MOC) efferent stage of the model receives excitatory projections from both fluctuation-sensitive model neurons of the inferior colliculus (IC) and wide-dynamic-range model neurons of the cochlear nucleus. The response of the model MOC stage dynamically controls cochlear gain via simulated outer hair cells. In response to amplitude-modulated (AM) noise, firing rates of most IC neurons with band-enhanced modulation transfer functions in awake rabbits increase over a time course consistent with the dynamics of the MOC efferent feedback. These changes in the rates of IC neurons in awake rabbits were employed to adjust the parameters of the efferent stage of the proposed model. Responses of the proposed model to AM noise were able to simulate the increasing IC rate over time, while the model without the efferent system did not show this trend. The proposed model with efferent gain control provides a powerful tool for testing hypotheses, shedding insight on mechanisms in hearing, specifically those involving the efferent system.

neuroscience↗