Neu Wanda Krassowska
Department of Biomedical Engineering, Duke University, Box 90281, Durham, NC, 27708-0281, USA.
Med Biol Eng Comput. 2016 Nov;54(11):1719-1725. doi: 10.1007/s11517-016-1459-z. Epub 2016 Mar 10.
This study provides an analytical solution for time-dependent potentials in a 3D cylindrical fiber stimulated by an extracellular point electrode. The membrane is passive and represented by surface resistance and surface capacitance. Separation of variables solution expresses intracellular and extracellular potentials as sums involving modified Bessel functions; the coefficients ([Formula: see text] and [Formula: see text]) depend on time. In contrast to previous analytical solutions, where [Formula: see text] and [Formula: see text] had to be determined numerically, here [Formula: see text] and [Formula: see text] are given by explicit formulas that resemble the formulas for potentials in a fiber stimulated by a transverse electric field. The comparison of the 3D analytical solution with the 1D cable model shows that the cable model approximates transmembrane potential with the error below 5 % when the distance between the electrode and the fiber is 0.2-4 mm and when the stimulus is longer than 3.3 ms. For stimuli between 0.43 and 3.3 ms, the range of fiber-electrode distances with error below 5 % shrinks, and it disappears completely for stimuli shorter than 0.43 ms. Thus, our study shows that the applicability of the 1D cable model may be more limited than previously considered.
本研究为细胞外点电极刺激的三维圆柱形纤维中随时间变化的电位提供了一种解析解。膜是被动的,由表面电阻和表面电容表示。变量分离解将细胞内和细胞外电位表示为涉及修正贝塞尔函数的和;系数([公式:见正文]和[公式:见正文])取决于时间。与之前的解析解不同,在之前的解析解中[公式:见正文]和[公式:见正文]必须通过数值方法确定,这里[公式:见正文]和[公式:见正文]由明确的公式给出,这些公式类似于横向电场刺激的纤维中电位的公式。三维解析解与一维电缆模型的比较表明,当电极与纤维之间的距离为0.2 - 4毫米且刺激持续时间长于3.3毫秒时,电缆模型对跨膜电位的近似误差低于5%。对于0.43至3.3毫秒之间的刺激,误差低于5%的纤维 - 电极距离范围缩小,而对于短于0.43毫秒的刺激,该范围完全消失。因此,我们的研究表明,一维电缆模型的适用性可能比之前认为的更有限。