Author:
Zimmermann Julius,Altenkirch Richard,van Rienen Ursula
Abstract
AbstractElectrical stimulation of biological samples such as tissues and cell cultures attracts growing attention due to its capability of enhancing cell activity, proliferation, and differentiation. Eventually, a profound knowledge of the underlying mechanisms paves the way for innovative therapeutic devices. Capacitive coupling is one option of delivering electric fields to biological samples that has advantages regarding biocompatibility. However, its biological mechanism of interaction is not well understood. Experimental findings could be related to voltage-gated channels, which are triggered by changes of the transmembrane potential. Numerical simulations by the finite element method provide a possibility to estimate the transmembrane potential. Since a full resolution of the cell membrane within a macroscopic model would lead to prohibitively expensive models, we suggest the adaptation of an approximate finite element method. Starting from a basic 2.5D model, the chosen method is validated and applied to realistic experimental situations. To understand the influence of the dielectric properties on the modelling outcome, uncertainty quantification techniques are employed. A frequency-dependent influence of the uncertain dielectric properties of the cell membrane on the modelling outcome is revealed. This may have practical implications for future experimental studies. Our methodology can be easily adapted for computational studies relying on experimental data.
Funder
Deutsche Forschungsgemeinschaft
Universität Rostock
Publisher
Springer Science and Business Media LLC
Reference79 articles.
1. Bassett, C. A. L. & Pawluk, R. J. Effects of electric currents on bone in vivo. Nature 204, 652–654 (1964).
2. Brighton, C. T. et al. A multicenter study of the treatment of non-union with constant direct current. J. Bone Joint Surg. Am. 63, 2–13 (1981).
3. Shigino, T., Ochi, M., Kagami, H., Sakaguchi, K. & Nakade, O. Application of capacitively coupled electric field enhances periimplant osteogenesis in the dog mandible. Int. J. Prosthodont. 13 (2000).
4. Mittelmeier, W. et al. Biss: Concept and biomechanical investigations of a new screw system for electromagnetically induced internal osteostimulation. Arch. Orthop. Trauma Surg. 124, 86–91 (2004).
5. Wang, W., Wang, Z., Zhang, G., Clark, C. C. & Brighton, C. T. Up-regulation of chondrocyte matrix genes and products by electric fields. Clin. Orthop. Relat. Res. 427, S163–S173 (2004).
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