On the electric potentials inside a charged soft hydrated biological tissue: Streaming potential versus diffusion potential

被引:60
作者
Lai, WM [1 ]
Mow, VC
Sun, DD
Ateshian, GA
机构
[1] Columbia Univ, Dept Mech Engn, New York, NY 10027 USA
[2] Columbia Univ, Dept Biomed Engn, New York, NY 10027 USA
[3] Columbia Univ, Dept Orthopaed Surg, New York, NY 10027 USA
来源
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME | 2000年 / 122卷 / 04期
关键词
D O I
10.1115/1.1286316
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
The main objective of this study is to determine the nature of electric fields inside articular cartilage while accounting for the effects of both streaming potential and diffusion potential. Specifically, we solve two tissue mechano-electrochemical problems using the triphasic theories developed by Lai et al. (1991, ASME J. Biomech Eng., 113, pp. 245-258) and Gu et al. (1998, ASME J. Biomech. Eng., 120, pp. 169-180) (1) the steady one-dimensional permeation problem; and (2) the transient one-dimensional ramped-displacement, confined-compression, stress-relaxation problem (both in an open circuit condition) so as to be able to calculate the compressive strain, the electric potential, and the fixed charged density (FCD) inside cartilage. Our calculations show that in these two technically important problems, the diffusion potential effects compete against the flow-induced kinetic effects (streaming potential) for dominance of the electric potential inside the tissue. For softer tissues of similar FCD (i.e., lower aggregate modulus), the diffusion potential effects are enhanced when the tissue is being compressed (i.e., increasing its FCD in a nonuniform manner) either by direct compression or by drag-induced compaction; indeed the diffusion potential effect may dominate over the streaming potential effect. The polarity of the the electric potential field is in the same direction of interstitial fluid flow when streaming potential dominates, and in the apposite direction of fluid flow when diffusion potential dominates. For physiologically realistic articular cartilage material parameters, the polarity of electric potential across the tissue on the outside (surface to surface) may be opposite to the polarity across the tissue on the inside (surface to surface). Since the electromechanical signals that chodrocytes perceive in situ are the stresses, strains, pressures and the electric field generated inside the extracellular matrix when the tissue is deformed, the results from this study offer new challenges for the understanding of possible mechanisms that control chondrocyte biosyntheses. [S0148-0731(00)00604-X].
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页码:336 / 346
页数:11
相关论文
共 56 条
[1]   VARIATIONS IN THE INTRINSIC MECHANICAL PROTERTIES OF HUMAN ARTICULAR-CARTILAGE WITH AGE, DEGENERATION, AND WATER-CONTENT [J].
ARMSTRONG, CG ;
MOW, VC .
JOURNAL OF BONE AND JOINT SURGERY-AMERICAN VOLUME, 1982, 64 (01) :88-94
[2]   Finite deformation biphasic material properties of bovine articular cartilage from confined compression experiments [J].
Ateshian, GA ;
Warden, WH ;
Kim, JJ ;
Grelsamer, RP ;
Mow, VC .
JOURNAL OF BIOMECHANICS, 1997, 30 (11-12) :1157-1164
[3]  
ATESHIAN GA, 1998, ADV BIOENG, V39, P253
[4]   Changes in proteoglycan synthesis of chondrocytes in articular cartilage are associated with the time-dependent changes in their mechanical environment [J].
Bachrach, NM ;
Valhmu, WB ;
Stazzone, E ;
Ratcliffe, A ;
Lai, WM ;
Mow, VC .
JOURNAL OF BIOMECHANICS, 1995, 28 (12) :1561-1569
[5]   ELECTRICAL BEHAVIOR OF CARTILAGE DURING LOADING [J].
BASSETT, CAL ;
PAWLUK, RJ .
SCIENCE, 1972, 178 (4064) :982-&
[6]   PROLIFERATIVE AND SYNTHETIC RESPONSE OF BOVINE GROWTH PLATE CHONDROCYTES TO VARIOUS CAPACITIVELY COUPLED ELECTRICAL FIELDS [J].
BRIGHTON, CT ;
JENSEN, L ;
POLLACK, SR ;
TOLIN, BS ;
CLARK, CC .
JOURNAL OF ORTHOPAEDIC RESEARCH, 1989, 7 (05) :759-765
[7]  
BUSCHMANN MD, 1995, ASME, V117, P180
[8]   Streaming potentials during the confined compression creep test of normal and proteoglycan-depleted cartilage [J].
Chen, AC ;
Nguyen, TT ;
Sah, RL .
ANNALS OF BIOMEDICAL ENGINEERING, 1997, 25 (02) :269-277
[9]  
Comper W. D., 1996, EXTRACELLULAR MATRIX, VII
[10]   The theory of membrane equilibria [J].
Donnan, FG .
CHEMICAL REVIEWS, 1924, 1 (01) :73-90