Rapid mechanical stimulation of inner-ear hair cells by photonic pressure

Author:

Abeytunge Sanjeewa12,Gianoli Francesco1ORCID,Hudspeth AJ2ORCID,Kozlov Andrei S1ORCID

Affiliation:

1. Laboratoryof Auditory Neuroscience and Biophysics, Department of Bioengineering, Imperial College London, London, United Kingdom

2. Howard Hughes Medical Institute andLaboratory of Sensory Neuroscience, The Rockefeller University, New York, United States

Abstract

Hair cells, the receptors of the inner ear, detect sounds by transducing mechanical vibrations into electrical signals. From the top surface of each hair cell protrudes a mechanical antenna, the hair bundle, which the cell uses to detect and amplify auditory stimuli, thus sharpening frequency selectivity and providing a broad dynamic range. Current methods for mechanically stimulating hair bundles are too slow to encompass the frequency range of mammalian hearing and are plagued by inconsistencies. To overcome these challenges, we have developed a method to move individual hair bundles with photonic force. This technique uses an optical fiber whose tip is tapered to a diameter of a few micrometers and endowed with a ball lens to minimize divergence of the light beam. Here we describe the fabrication, characterization, and application of this optical system and demonstrate the rapid application of photonic force to vestibular and cochlear hair cells.

Funder

Howard Hughes Medical Institute

Wellcome Trust

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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1. Mechanosensitive Channels: History, Diversity, and Emerging Mechanisms;Биологические мембраны Журнал мембранной и клеточной биологии;2023-01-01

2. Mechanosensitive Channels: History, Diversity, and Mechanisms;Biochemistry (Moscow), Supplement Series A: Membrane and Cell Biology;2022-12

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5. Mechanotransduction in mammalian sensory hair cells;Molecular and Cellular Neuroscience;2022-05

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