Auditory sensitivity provided by self-tuned critical oscillations of hair cells
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Open Access
- 28 March 2000
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 97 (7) , 3183-3188
- https://doi.org/10.1073/pnas.97.7.3183
Abstract
We introduce the concept of self-tuned criticality as a general mechanism for signal detection in sensory systems. In the case of hearing, we argue that active amplification of faint sounds is provided by a dynamical system that is maintained at the threshold of an oscillatory instability. This concept can account for the exquisite sensitivity of the auditory system and its wide dynamic range as well as its capacity to respond selectively to different frequencies. A specific model of sound detection by the hair cells of the inner ear is discussed. We show that a collection of motor proteins within a hair bundle can generate oscillations at a frequency that depends on the elastic properties of the bundle. Simple variation of bundle geometry gives rise to hair cells with characteristic frequencies that span the range of audibility. Tension-gated transduction channels, which primarily serve to detect the motion of a hair bundle, also tune each cell by admitting ions that regulate the motor protein activity. By controlling the bundle9s propensity to oscillate, this feedback automatically maintains the system in the operating regime where it is most sensitive to sinusoidal stimuli. The model explains how hair cells can detect sounds that carry less energy than the background noise.Keywords
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This publication has 37 references indexed in Scilit:
- Nonlinear Dynamics of the Perceived Pitch of Complex SoundsPhysical Review Letters, 1999
- Self-Organized Beating and Swimming of Internally Driven FilamentsPhysical Review Letters, 1999
- Modeling molecular motorsReviews of Modern Physics, 1997
- Otoacoustic emissions, hair cells, and myosin motorsThe Journal of the Acoustical Society of America, 1997
- Regulation of dynein‐driven motility in cilia and flagellaCell Motility, 1994
- Auditory illusions and the single hair cellNature, 1993
- How the ear's works workNature, 1989
- High-frequency nanometre-scale vibration in 'quiescent' flagellar axonemesNature, 1989
- Actin filaments, stereocilia, and hair cells of the bird cochlea. I. Length, number, width, and distribution of stereocilia of each hair cell are related to the position of the hair cell on the cochlea.The Journal of cell biology, 1983
- Hearing. II. The physical basis of the action of the cochleaProceedings Of The Royal Society B-Biological Sciences, 1948