Impedance analysis of the organ of corti with magnetically actuated probes

被引:50
作者
Scherer, MP [1 ]
Gummer, AW [1 ]
机构
[1] Univ Tubingen, Dept Otolaryngol, Hearing Res Ctr, Sect Physiol Acoust & Commun, D-72076 Tubingen, Germany
关键词
D O I
10.1529/biophysj.103.037184
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
An innovative method is presented to measure the mechanical driving point impedance of biological structures up to at least 40 kHz. The technique employs an atomic force cantilever with a ferromagnetic coating and an external magnetic field to apply a calibrated force to the cantilever. Measurement of the resulting cantilever velocity using a laser Doppler vibrometer yields the impedance. A key feature of the method is that it permits measurements for biological tissue in physiological solutions. The method was applied to measure the point impedance of the organ of Corti in situ, to elucidate the biophysical basis of cochlear amplification. The basilar membrane was mechanically clamped at its tympanic surface and the measurements conducted at different radial positions on the reticular lamina. The tectorial membrane was removed. The impedance was described by a generalized Voigt-Kelvin viscoelastic model, in which the stiffness was real-valued and independent of frequency, but the viscosity was complex-valued with positive real part, which was dependent on frequency and negative imaginary part, which was independent of frequency. There was no evidence for an inertial component. The magnitude of the impedance was greatest at the tunnel of Corti, and decreased monotonically in each of the radial directions. In the absence of inertia, the mechanical load on the outer hair cells causes their electromotile displacement responses to be reduced by only 10-fold over the entire range of auditory frequencies.
引用
收藏
页码:1378 / 1391
页数:14
相关论文
共 71 条
[1]   Deformations of the isolated mouse tectorial membrane produced by oscillatory forces [J].
Abnet, CC ;
Freeman, DM .
HEARING RESEARCH, 2000, 144 (1-2) :29-46
[2]   Effect of diamide on force generation and axial stiffness of the cochlear outer hair cell [J].
Adachi, M ;
Iwasa, KH .
BIOPHYSICAL JOURNAL, 1997, 73 (05) :2809-2818
[3]   COCHLEAR MICROMECHANICS - A PHYSICAL MODEL OF TRANSDUCTION [J].
ALLEN, JB .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1980, 68 (06) :1660-1670
[4]   A FAST MOTILE RESPONSE IN GUINEA-PIG OUTER HAIR-CELLS - THE CELLULAR BASIS OF THE COCHLEAR AMPLIFIER [J].
ASHMORE, JF .
JOURNAL OF PHYSIOLOGY-LONDON, 1987, 388 :323-347
[5]   EVOKED MECHANICAL RESPONSES OF ISOLATED COCHLEAR OUTER HAIR-CELLS [J].
BROWNELL, WE ;
BADER, CR ;
BERTRAND, D ;
DERIBAUPIERRE, Y .
SCIENCE, 1985, 227 (4683) :194-196
[6]   Motion analysis in the hemicochlea [J].
Cai, HX ;
Richter, CP ;
Chadwick, RS .
BIOPHYSICAL JOURNAL, 2003, 85 (03) :1929-1937
[7]   NONLINEAR MECHANICS AT THE APEX OF THE GUINEA-PIG COCHLEA [J].
COOPER, NP ;
RHODE, WS .
HEARING RESEARCH, 1995, 82 (02) :225-243
[8]   THEORY OF ELECTRICALLY DRIVEN SHAPE CHANGES OF COCHLEAR OUTER HAIR-CELLS [J].
DALLOS, P ;
HALLWORTH, R ;
EVANS, BN .
JOURNAL OF NEUROPHYSIOLOGY, 1993, 70 (01) :299-323
[9]  
DALLOS P, 2003, JARO-J ASSOC RES OTO, P1, DOI DOI 10.1007/S10162-002-304
[10]   Morphology of the unfixed cochlea [J].
Edge, RM ;
Evans, BN ;
Pearce, M ;
Richter, CP ;
Hu, X ;
Dallos, P .
HEARING RESEARCH, 1998, 124 (1-2) :1-16