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Hair cells, the sensory receptors of the internal ear, subserve different functions in various receptor organs: they detect oscillatory stimuli in the auditory system, but transduce constant and step stimuli in the vestibular and…

Neurons and Cognition · Quantitative Biology 2017-03-29 Joshua D. Salvi , Daibhid O Maoileidigh , Brian A. Fabella , Melanie Tobin , A. J. Hudspeth

Hair cells of the auditory and vestibular systems display astonishing sensitivity, frequency selectivity, and temporal resolution to external signals. These specialized cells utilize an internal active amplifier to achieve highly sensitive…

Neurons and Cognition · Quantitative Biology 2021-03-31 Justin Faber , Hancheng Li , Dolores Bozovic

Hair cells of the auditory and vestibular systems are capable of detecting sounds that induce sub-nanometer vibrations of the hair bundle, below the stochastic noise levels of the surrounding fluid. Hair bundles of certain species are also…

Neurons and Cognition · Quantitative Biology 2019-05-23 Justin Faber , Dolores Bozovic

The hair cells of the vertebrate inner ear convert mechanical stimuli to electrical signals. Two adaptation mechanisms are known to modify the ionic current flowing through the transduction channels of the hair bundles: a rapid process…

Biological Physics · Physics 2009-11-10 Andrej Vilfan , Thomas Duke

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 which is…

Biological Physics · Physics 2009-11-06 Sebastien Camalet , Thomas Duke , Frank Julicher , Jacques Prost

Hair cells actively drive oscillations of their mechanosensitive organelles--the hair bundles that enable hearing and balance sensing in vertebrates. Why and how some hair cells expend energy by sustaining this oscillatory motion in order…

Statistical Mechanics · Physics 2026-04-02 Yanathip Thipmaungprom , Laila Saliekh , Rodrigo Alonso , Édgar Roldán , Florian Berger , Roman Belousov

The hair cell's mechanoreceptive organelle, the hair bundle, is highly sensitive because its transduction channels open over a very narrow range of displacements. The synchronous gating of transduction channels also underlies the active…

Subcellular Processes · Quantitative Biology 2009-02-17 Andrei S. Kozlov , Thomas Risler , A. J. Hudspeth

The viscous liquid surrounding a hair bundle dissipates energy and dampens oscillations, which poses a fundamental physical challenge to the high sensitivity and sharp frequency selectivity of hearing. To identify the mechanical forces at…

Subcellular Processes · Quantitative Biology 2015-05-15 Johannes Baumgart , Andrei S. Kozlov , Thomas Risler , A. James Hudspeth

Hair cells conduct auditory transduction in vertebrates. In lower vertebrates such as frogs and turtles, due to the active mechanism in hair cells, hair bundles(stereocilia) can be spontaneously oscillating or quiescent. Recently, the…

Biological Physics · Physics 2015-06-19 Kyung-Joong Kim , Kang-Hun Ahn

We develop a framework for the general interpretation of the stochastic dynamical system near a limit cycle. Such quasi-periodic dynamics are commonly found in a variety of nonequilibrium systems, including the spontaneous oscillations of…

Statistical Mechanics · Physics 2018-10-30 Janaki Sheth , Dolores Bozovic , Alex Levine

Cochlear outer hair cells (OHCs) have two mechanosensitive elements: the hair bundle with mechanotrasducer channels and the piezoelectric lateral wall of the cell body. The present report examines how these elements interact with each other…

Biological Physics · Physics 2025-09-09 Kuni H Iwasa

In the ear, hair cells transform mechanical stimuli into neuronal signals with great sensitivity relying on certain active processes. Individual hair cell bundles of non-mammals such as frogs and turtles are known to show spontaneous…

Biological Physics · Physics 2013-10-10 Kang-Hun Ahn

Hair bundles are biological oscillators that actively transduce mechanical stimuli into electrical signals in the auditory, vestibular, and lateral-line systems of vertebrates. A bundle's function can be explained in part by its operation…

Biological Physics · Physics 2016-08-29 Joshua D. Salvi , Dáibhid Ó Maoiléidigh , A. J. Hudspeth

Modelling noisy oscillations of active systems is one of the current challenges in physics and biology. Because the physical mechanisms of such processes are often difficult to identify, we propose a linear stochastic model driven by a…

Mechanical oscillations are important for many cellular processes, e.g. the beating of cilia and flagella or the sensation of sound by hair cells. These dynamic states originate from spontaneous oscillations of molecular motors. A…

Biological Physics · Physics 2009-01-29 Stefan Gunther , Karsten Kruse

The ability of the mammalian ear in processing high frequency sounds, up to $\sim$100 kHz, is based on the capability of outer hair cells (OHCs) responding to stimulation at high frequencies. These cells show a unique motility in their cell…

Biological Physics · Physics 2017-09-22 Kuni H Iwasa

The sensitivity and frequency selectivity of hearing result from tuned amplification by an active process in the mechanoreceptive hair cells. In most vertebrates the active process stems from the active motility of hair bundles. The…

Neurons and Cognition · Quantitative Biology 2010-03-30 Tobias Reichenbach , A. J. Hudspeth

Electromotility of outer hair cells (OHCs) has been extensively studied with in vitro experiments because of its physiological significance in the cochlear amplifier, which provides the exquisite sensitivity and frequency selectivity of the…

Biological Physics · Physics 2016-12-08 Kuni H Iwasa

Direct gating of mechanoelectrical-transduction channels by mechanical force is a basic feature of hair cells that assures fast transduction and underpins the mechanical amplification of acoustic inputs. But the associated nonlinearity -…

Subcellular Processes · Quantitative Biology 2012-03-09 Andrei S. Kozlov , Thomas Risler , Armin J. Hinterwirth , A. J. Hudspeth

Astounding properties of biological sensors can often be mapped onto a dynamical system in the vicinity a bifurcation. For mammalian hearing, a Hopf bifurcation description has been shown to work across a whole range of scales, from…

Neurons and Cognition · Quantitative Biology 2015-10-13 Florian Gomez , Tom Lorimer , Ruedi Stoop
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