Radial Flow Field of Spiral Cochlea and Its Effect on Stereocilia

Author:

Zhao Z.1,Yao W.1,Wang M.1,Wang J.1,Zhang T.234

Affiliation:

1. School of Mechanics and Engineering Science, Shanghai Institute of Applied Mathematics and Mechanics, Shanghai University , Shanghai 200072, China

2. ENT Institute , Eye & ENT Hospital of Fudan University, Shanghai 200031, China ; , Shanghai 200031, China ; , Shanghai 200031, China

3. Hearing Medicine Key Laboratory, National Health Commission of China , Eye & ENT Hospital of Fudan University, Shanghai 200031, China ; , Shanghai 200031, China ; , Shanghai 200031, China

4. Department of Facial Plastic Reconstruction Surgery, Eye & ENT Hospital of Fudan University , Eye & ENT Hospital of Fudan University, Shanghai 200031, China ; , Shanghai 200031, China ; , Shanghai 200031, China

Abstract

Abstract The opening of the ion channels ultimately depends on the movement and energy conversion of the microstructural organization. But the role was not yet clear how the active sound amplification function is generated by the microstructure in the cochlear characteristic spiral shape. In this paper, an analytical model of the spiral cochlea is developed to investigate the radial flow field generated by the spiral shape of the cochlea and its effect on the outer hair cell stereocilia, and to analyze the effect of the spiral shape on the micromechanics of the cochlea. The results show that the spiral shape of the cochlea exerts a radial shear force on the hair cell stereocilia by generating a radial flow field, causing the stereocilia to deflect in the radial flow field, with the maximum deflection occurring at the apex of the cochlea. This finding explains from the microscopic mechanism that cochlear spiral shape can enhance low-frequency hearing in humans, which provides a basis for further studies on the contribution of the movement of stereocilia applied by the radial flow field of lymphatic fluid to activate ion channels for auditory production.

Funder

National Natural Science Foundation of China

Publisher

ASME International

Subject

Physiology (medical),Biomedical Engineering

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