Title :
Electrical stimulation of neural tissue modeled as a cellular composite: Point Source electrode in an isotropic tissue
Author :
Monfared, Omid ; Nes̆iÌcÌ, Dragan ; Freestone, Dean R. ; Grayden, David B. ; Tahayori, Bahman ; Meffin, Hamish
Author_Institution :
Dept. of Electr. & Electron. Eng., Univ. of Melbourne, Parkville, VIC, Australia
Abstract :
Standard volume conductor models of neural electrical stimulation assume that the electrical properties of the tissue are well described by a conductivity that is smooth and homogeneous at a microscopic scale. However, neural tissue is composed of tightly packed cells whose membranes have markedly different electrical properties to either the intra- or extracellular space. Consequently, the electrical properties of tissue are highly heterogeneous at the microscopic scale: a fact not accounted for in standard volume conductor models. Here we apply a recently developed framework for volume conductor models that accounts for the cellular composition of tissue. We consider the case of a point source electrode in tissue comprised of neural fibers crossing each other equally in all directions. We derive the tissue admittivity (that replaces the standard tissue conductivity) from single cell properties, and then calculate the extracellular potential. Our findings indicate that the cellular composition of tissue affects the spatiotemporal profile of the extracellular potential. In particular, the full solution asymptotically approaches a near-field limit close to the electrode and a far-field limit far from the electrode. The near-field and far-field approximations are solutions to standard volume conductor models, but differ from each other by nearly an order or magnitude. Consequently the full solution is expected to provide a more accurate estimate of electrical potentials over the full range of electrode-neurite separations.
Keywords :
approximation theory; bioelectric potentials; biological tissues; biomedical electrodes; biomembranes; brain models; cellular biophysics; electric admittance; electrical conductivity; neurophysiology; patient treatment; spatiotemporal phenomena; cell membrane electrical properties; cellular composite; cellular composition effects; electrical potential estimation; electrode-neurite separation range; extracellular potential calculation; extracellular space; far-field approximations; far-field limit; heterogeneous tissue electrical properties; homogeneous conductivity; intracellular space; isotropic tissue; microscopic scale electrical properties; near-field approximations; near-field limit; neural electrical stimulation; neural fiber crossing directions; neural tissue composition; neural tissue model; point source electrode; single cell properties; smooth conductivity; spatiotemporal profile; standard tissue conductivity; standard volume conductor models; tightly packed cell; tissue admittivity; Conductors; Electric potential; Equations; Extracellular; Mathematical model; Solid modeling; Standards;
Conference_Titel :
Engineering in Medicine and Biology Society (EMBC), 2014 36th Annual International Conference of the IEEE
Conference_Location :
Chicago, IL
DOI :
10.1109/EMBC.2014.6944711