Medial Olivocochlear Neurons

Medial olivocochlear neurons are brainstem auditory neurons that send efferent signals to cochlear outer hair cells, helping regulate how the ear amplifies sound. When activated, their axon terminals release acetylcholine, which binds α9α10 nicotinic receptors on outer hair cells, increases intracellular calcium, and opens calcium-activated potassium channels; the resulting hyperpolarization reduces outer hair cell electromotility and cochlear amplifier gain. This feedback can improve auditory signal processing, particularly in noisy environments, while influencing sensitivity to acoustic stimulation. Studying medial olivocochlear neurons supports research on auditory attention, hearing protection, noise-related injury, tinnitus, and other disorders involving cochlear regulation.

Medial Olivocochlear Neurons - Related Videos

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JoVE EoE - Neurophysiology

Applying Noise Currents to Medial Vestibular Nucleus Neurons Using Whole-Cell Patch-Clamp Technique

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2025

This video demonstrates a protocol involving the application of subthreshold noise currents to medial vestibular nucleus neurons using the whole-cell patch-clamp technique to study the impact of the noise currents on neuronal sensitivity to electrical stimuli.

Preparing Wedge Brain Slices to Visualize Auditory Neurons

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2025

This video demonstrates the process of preparing wedge-shaped brain slices in a laboratory setting. Using a vibratome, a wedge-shaped slice from a mouse's brain is crafted with varying thickness. This slice contains the auditory nerve root positioned on the thicker end, while the hearing-related neurons are located on the thinner end.

Real-Time Calcium Imaging of a Mouse Medial Prefrontal Cortex Using a Miniscope

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2025

Source: Thapa, R., et. al., Stereotaxic Viral Injection and Gradient-Index Lens Implantation for Deep Brain In Vivo Calcium Imaging. J. Vis. Exp. (2021)The video demonstrates real-time calcium imaging using a miniscope in a transduced mouse, correlating neuronal activity with behavior.

A Comprehensive Protocol for Manual Segmentation of the Medial Temporal Lobe Structures

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Cited by 33 •

2014

The present work provides a comprehensive set of guidelines for manually tracing the medial temporal lobe (MTL) structures. This protocol can be applied to research involving structural and/or combined structural-functional magnetic resonance imaging (MRI) investigations of the MTL, in both healthy and clinical groups.

Stochastic Noise Application for the Assessment of Medial Vestibular Nucleus Neuron Sensitivity In Vitro

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Cited by 5 •

2019

Galvanic vestibular stimulation in humans exhibits improvements in vestibular function. However, it is unknown how these effects occur. Here, we describe how to apply sinusoidal and stochastic electrical noise and evaluate appropriate stimulus amplitudes in individual medial vestibular nucleus neurons in the C57BL/6 mouse.

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