Field patterns in a 3D tapered spiral model of the electrically stimulated cochlea

被引:85
作者
Briaire, JJ [1 ]
Frijns, JHM [1 ]
机构
[1] Leiden Univ, Med Ctr, ENT Dept, NL-2300 RC Leiden, Netherlands
关键词
cochlear implant; electrical volume conduction; preferential current pathway; potential field; auditory nerve;
D O I
10.1016/S0378-5955(00)00104-0
中图分类号
R36 [病理学]; R76 [耳鼻咽喉科学];
学科分类号
100104 ; 100213 ;
摘要
Despite the fact that cochlear implants are widely and successfully used in clinical practice, relatively little is known to date about the electric field patterns they set up in the cochlea. Based upon the available measurements and modelling results, the scala tympani is usually considered to be a preferential current pathway that acts like a leaky transmission line. Therefore, most authors assume the current thresholds to decay exponentially along the length of the scala tympani. Here we present potential distributions calculated with a fully three-dimensional, spiralling volume conduction model of the guinea pig cochlea, and try to identify its preferential current pathways. The relatively well conducting scala tympani turns out to be the main one indeed, but the exponential decay (J similar to e(-z)) of current is only a good description of the far-field behaviour. In the vicinity of the electrodes, i.e. near the fibres that are most easily excited, higher current densities are found, that are best described by a spherical spread of the current (J similar to 1/R-2) The results are compared with those obtained with a variant of our previous, rotationally symmetric, model and with measurements in the literature. The implications of the findings are discussed in the light of simulated neural responses. (C) 2000 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:18 / 30
页数:13
相关论文
共 43 条
[1]   Summary of results using the nucleus CI24M implant to record the electrically evoked compound action potential [J].
Abbas, PJ ;
Brown, CJ ;
Shallop, JK ;
Firszt, JB ;
Hughes, ML ;
Hong, SH ;
Staller, SJ .
EAR AND HEARING, 1999, 20 (01) :45-59
[2]  
ASCHENDORFF A, 1999, 1999 C IMPL AUD PROS, P56
[3]  
BALKANY TJ, 1986, OTOLARYNG CLIN N AM, V19, P215
[4]  
Binns K.J., 1992, The Analytical and Numerical Solution of Electric and Magnetic Fields
[5]   CURRENT DISTRIBUTIONS IN COCHLEAR STIMULATION [J].
BLACK, RC ;
CLARK, GM ;
TONG, YC ;
PATRICK, JF .
ANNALS OF THE NEW YORK ACADEMY OF SCIENCES, 1983, 405 (JUN) :137-145
[6]  
BREBBIA CA, 1992, BOUNDARY ELEMENTS IN
[7]   3D mesh generation to solve the electrical volume conduction problem in the implanted inner ear [J].
Briaire, JJ ;
Frijns, JHM .
SIMULATION PRACTICE AND THEORY, 2000, 8 (1-2) :57-73
[8]  
BRIAIRE JJ, 1998, 4 EUR S PED COCHL IM, P88
[9]  
BROWN MC, 1987, J COMP NEUROL, V260, P591, DOI 10.1002/cne.902600411
[10]   A stochastic model of the electrically stimulated auditory nerve: Pulse-train response [J].
Bruce, IC ;
Irlicht, LS ;
White, MW ;
O'Leary, SJ ;
Dynes, S ;
Javel, E ;
Clark, GM .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1999, 46 (06) :630-637