연구논문

세부과제번호 2014M3A9D5A01073865 단계 1단계 3차년도
세부과제명 IMPC 마우스 이차 청각표현형 분석 기반구축 및 서비스 제공 공동 유/무 Y
SCI여부 Y 게재년월 2016-06
논문제목 Magnetic Force Nanoprobe for Direct Observation of Audio Frequency Tonotopy of Hair Cells.
총저자명 Ji-Wook KimJae-Hyun LeeJi-Hyun MaEunna ChungHongsuh ChoiJinwoong BokJinwoo Cheon
학술지명 Nano Lett. 게재권(호) 16(6)
저널구분 - 페이지수 3885- 3891
참여연구원 복진웅 연구책임자 복진웅
과제기여도 10 PMID 27215487
사사기관수 - IF (년도) 13.592
제1저자 김지욱 교신저자 천진우
공동저자 -
초록
Sound perception via mechano-sensation is a remarkably sensitive and fast transmission process, converting sound as a mechanical input to neural signals in a living organism. Although knowledge of auditory hair cell functions has advanced over the past decades, challenges remain in understanding their biomechanics, partly because of their biophysical complexity and the lack of appropriate probing tools. Most current studies of hair cells have been conducted in a relatively low-frequency range (<1000 Hz); therefore, fast kinetic study of hair cells has been difficult, even though mammalians have sound perception of 20 kHz or higher. Here, we demonstrate that the magnetic force nanoprobe (MFN) has superb spatiotemporal capabilities to mechanically stimulate spatially-targeted individual hair cells with a temporal resolution of up to 9 μs, which is equivalent to approximately 50 kHz; therefore, it is possible to investigate avian hair cell biomechanics at different tonotopic regions of the cochlea covering a full hearing frequency range of 50 to 5000 Hz. We found that the variation of the stimulation frequency and amplitude of hair bundles creates distinct mechanical responsive features along the tonotopic axis, where the kinetics of the hair bundle recovery motion exhibits unique frequency-dependent characteristics: basal, middle, and apical hair bundles can effectively respond at their respective ranges of frequency. We revealed that such recovery kinetics possesses two different time constants that are closely related to the passive and active motilities of hair cells. The use of MFN is critical for the kinetics study of free-standing hair cells in a spatiotemporally distinct tonotopic organization.
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