A Bidirectionally Coupled Hopf–Kuramoto Model of Hair Cell–Neuron Dynamics: Saddle-Node-Mediated Phase-Locking/Quasi-Periodic Transitions and Coherence Resonance

This paper presents a minimal dynamical model of bidirectional coupling between a hair cell and a neuron, combining a Hopf oscillator (representing the self-sustained mechanical oscillations of the hair bundle) with a Kuramoto phase oscillator (modeling neuronal spiking). This framework captures the essential reciprocity of sensory transduction: mechanical deflection drives neural activity, while efferent feedback modulates hair bundle mechanics. Through bifurcation analysis, we identify conditions for stable phase locking, where both oscillators synchronize at a common frequency with a fixed phase difference. Stable entrainment arises most robustly under moderate nonisochronicity (amplitude-dependent frequency shifts) and balanced coupling strengths. In contrast, weak or excessively strong coupling, or large mismatches in intrinsic frequencies, typically lead to quasiperiodic or desynchronized dynamics. Phase response curves reveal type-II characteristics, with perturbations causing either phase advances or delays depending on oscillation phase. Notably, perturbations to the hair cell induce significantly larger phase shifts than those applied to the neuron, highlighting the mechanical oscillator’s dominant influence on system timing. Finally, we assess the impact of stochastic noise using the Kuramoto order parameter as a synchrony metric. Noise can either disrupt coherence or enhance synchronization via coherence resonance under specific coupling regimes, particularly when the hair cell strongly drives the neuron. This suggests that stochasticity may not degrade signal fidelity but can, in certain configurations, promote functional synchrony in sensory processing. The model thus provides a tractable platform for exploring how mechanical–neural interactions, parameter tuning, and noise jointly shape the dynamic behavior in auditory and vestibular systems.

Authors

Institutions

Publication Details

Journal
International Journal of Bifurcation and Chaos
Published
2026-09-30
DOI
https://doi.org/10.1142/s0218127427500143
Primary Topic
Hearing, Cochlea, Tinnitus, Genetics
Type
article
Field-Weighted Citation Impact
0.00
Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

A Bidirectionally Coupled Hopf–Kuramoto Model of Hair Cell–Neuron Dynamics: Saddle-Node-Mediated Phase-Locking/Quasi-Periodic Transitions and Coherence Resonance

Sajad Jafari, Fatemeh Parastesh, Karthikeyan Rajagopal, Yuxing Li et al.
International Journal of Bifurcation and Chaos
Hearing, Cochlea, Tinnitus, Genetics
article

A Bidirectionally Coupled Hopf–Kuramoto Model of Hair Cell–Neuron Dynamics: Saddle-Node-Mediated Phase-Locking/Quasi-Periodic Transitions and Coherence Resonance

Sajad Jafari, Fatemeh Parastesh, Karthikeyan Rajagopal, Yuxing Li, Deivasundari Muthukumar
article en

Abstract

This paper presents a minimal dynamical model of bidirectional coupling between a hair cell and a neuron, combining a Hopf oscillator (representing the self-sustained mechanical oscillations of the hair bundle) with a Kuramoto phase oscillator (modeling neuronal spiking). This framework captures the essential reciprocity of sensory transduction: mechanical deflection drives neural activity, while efferent feedback modulates hair bundle mechanics. Through bifurcation analysis, we identify conditions for stable phase locking, where both oscillators synchronize at a common frequency with a fixed phase difference. Stable entrainment arises most robustly under moderate nonisochronicity (amplitude-dependent frequency shifts) and balanced coupling strengths. In contrast, weak or excessively strong coupling, or large mismatches in intrinsic frequencies, typically lead to quasiperiodic or desynchronized dynamics. Phase response curves reveal type-II characteristics, with perturbations causing either phase advances or delays depending on oscillation phase. Notably, perturbations to the hair cell induce significantly larger phase shifts than those applied to the neuron, highlighting the mechanical oscillator’s dominant influence on system timing. Finally, we assess the impact of stochastic noise using the Kuramoto order parameter as a synchrony metric. Noise can either disrupt coherence or enhance synchronization via coherence resonance under specific coupling regimes, particularly when the hair cell strongly drives the neuron. This suggests that stochasticity may not degrade signal fidelity but can, in certain configurations, promote functional synchrony in sensory processing. The model thus provides a tractable platform for exploring how mechanical–neural interactions, parameter tuning, and noise jointly shape the dynamic behavior in auditory and vestibular systems.

International Journal of Bifurcation and Chaos
Amirkabir University of Technology (IR), Northwestern Polytechnical University (CN), Trichy SRM Medical College Hospital and Research Centre (IN), Translational Research Platform for Veterinary Biologicals (India) (IN), Easwari Engineering College
Openalex Percentile: Top 14%
Hearing, Cochlea, Tinnitus, Genetics
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.