Publication | Open Access
A membrane-based force generation mechanism in auditory sensory cells.
260
Citations
26
References
1992
Year
MechanotransductionCellular PhysiologySensory NeuroscienceBiophysicsHealth SciencesMechanobiologyCell BiomechanicsForce Generation MechanismAuditory Sensory CellsNervous SystemCell BiologyAuditory Hair CellsSmall Membrane PatchesPatch ElectrodeAuditory PhysiologyCochlear PhysiologyCell MotilityElectrophysiologyAuditory ComputationMedicineAuditory SystemAuditory Neuroscience
Auditory outer hair cells can elongate and shorten at acoustic frequencies in response to changes of plasma membrane potential. We show that this fast bidirectional contractile activity consists of an electromechanical transduction process that occurs at the lateral plasma membrane and can be activated and analyzed independently in small membrane patches inside a patch electrode. Bidirectional forces are generated by increases and decreases in membrane area in response to hyperpolarization and depolarization, respectively. We suggest that the force generation mechanism is driven by voltage-dependent conformational changes within a dense array of large transmembrane proteins associated with the site of electromechanical transduction.
| Year | Citations | |
|---|---|---|
Page 1
Page 1