Physiology of hearing

 

Physiology of Hearing

Hearing is the complex process of converting acoustic pressure waves in the air into electrical nerve impulses that the brain interprets as sound. This involves a specialized transduction pathway.

The Auditory Pathway

  • External Ear: Collects and funnels sound waves toward the tympanic membrane (TM).
  • Middle Ear: The ossicles (malleus, incus, stapes) amplify sound via mechanical advantage, overcoming the impedance mismatch between air and fluid in the cochlea.
  • Inner Ear (Cochlea): Stapes movement at the oval window creates fluid waves in the perilymph (scala vestibuli/tympani), causing displacement of the Basilar Membrane.

Transduction Mechanism

Step Action
Shearing Organ of Corti hair cell stereocilia bend against the tectorial membrane.
Depolarization Bending towards the kinocilium opens K^+ channels, causing depolarization and Ca^{2+} influx.
Transmission Release of neurotransmitters onto the vestibulocochlear nerve (CN VIII).
High-Yield Exam Pearl:

  • Tonotopic Organization: The base of the basilar membrane responds to high-frequency sounds, while the apex responds to low-frequency sounds.
  • Endolymph: Unlike most extracellular fluid, it is high in K^+ and low in Na^+, which is essential for the electrical gradient required for hair cell depolarization.