The sensitivity of mechanoelectrical transduction response phase to acoustic overstimulation is calcium-dependent

Pflugers Arch. 2024 Feb;476(2):271-282. doi: 10.1007/s00424-023-02883-z. Epub 2023 Nov 21.

Abstract

The Mechanoelectrical transduction (MET) channels of the mammalian hair cells are essential for converting sound stimuli into electrical signals that enable hearing. However, the impact of acoustic overstimulation, a leading cause of hearing loss, on the MET channel function remains poorly understood. In this study, I investigated the effect of loud sound-induced temporary threshold shift (TTS) on the transduction response phase across a wide range of sound frequencies and amplitudes. The results demonstrated an increase in the transduction response phase following TTS, indicating altered transduction apparatus function. Further investigations involving the reduction of extracellular calcium, a known consequence of TTS, replicated the observed phase changes. Additionally, reduction of potassium entry confirmed the specific role of calcium in regulating the transduction response phase. These findings provide novel insights into the impact of loud sound exposure on hearing impairment at the transduction apparatus level and highlight the critical role of calcium in modulating sound transduction. Considering that over 1 billion teenagers and young adults globally are at risk of hearing loss due to unsafe music listening habits, these results could significantly enhance awareness about the damaging effects of loud sound exposure.

Keywords: Hair cell extracellular calcium; Hair cell extracellular potassium; Hair cell response phase; MET channel; Receptor potential phase.

MeSH terms

  • Acoustic Stimulation
  • Acoustics
  • Adolescent
  • Animals
  • Calcium*
  • Hair Cells, Auditory / physiology
  • Hearing
  • Hearing Loss*
  • Humans
  • Mammals
  • Young Adult

Substances

  • Calcium