A model for amplification of hair-bundle motion by cyclical binding of Ca 2+ to mechanoelectrical-transduction channels
- 22 December 1998
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 95 (26) , 15321-15326
- https://doi.org/10.1073/pnas.95.26.15321
Abstract
Amplification of auditory stimuli by hair cells augments the sensitivity of the vertebrate inner ear. Cell-body contractions of outer hair cells are thought to mediate amplification in the mammalian cochlea. In vertebrates that lack these cells, and perhaps in mammals as well, active movements of hair bundles may underlie amplification. We have evaluated a mathematical model in which amplification stems from the activity of mechanoelectrical-transduction channels. The intracellular binding of Ca 2+ to channels is posited to promote their closure, which increases the tension in gating springs and exerts a negative force on the hair bundle. By enhancing bundle motion, this force partially compensates for viscous damping by cochlear fluids. Linear stability analysis of a six-state kinetic model reveals Hopf bifurcations for parameter values in the physiological range. These bifurcations signal conditions under which the system’s behavior changes from a damped oscillatory response to spontaneous limit-cycle oscillation. By varying the number of stereocilia in a bundle and the rate constant for Ca 2+ binding, we calculate bifurcation frequencies spanning the observed range of auditory sensitivity for a representative receptor organ, the chicken’s cochlea. Simulations using prebifurcation parameter values demonstrate frequency-selective amplification with a striking compressive nonlinearity. Because transduction channels occur universally in hair cells, this active-channel model describes a mechanism of auditory amplification potentially applicable across species and hair-cell types.Keywords
This publication has 37 references indexed in Scilit:
- Ca selectivity of the transduction channels in the hair cells of the frog sacculusActa Physiologica Scandinavica, 1995
- Essential Ca 2+ -Binding Motif for Ca 2+ -Sensitive Inactivation of L-Type Ca 2+ ChannelsScience, 1995
- Gating-Spring Models of Mechanoelectrical Transduction by Hair Cells of the Internal EarAnnual Review of Biophysics, 1995
- Identification of a 120 kd hair-bundle myosin located near stereociliary tipsNeuron, 1993
- Nonlinear mechanical responses of mouse cochlear hair bundlesProceedings Of The Royal Society B-Biological Sciences, 1992
- How the ear's works workNature, 1989
- The actin filament content of hair cells of the bird cochlea is nearly constant even though the length, width, and number of stereocilia vary depending on the hair cell location.The Journal of cell biology, 1988
- 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
- Ionic basis of the receptor potential in a vertebrate hair cellNature, 1979
- Hearing. II. The physical basis of the action of the cochleaProceedings Of The Royal Society B-Biological Sciences, 1948