Status | 已发表Published |
Title | Electric discharge of electrocytes: Modelling, analysis and simulation |
Creator | |
Date Issued | 2020 |
Source Publication | Journal of theoretical biology
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ISSN | 1095-8541 |
Volume | 498 |
Abstract | In this paper, we investigate the electric discharge of electrocytes by extending our previous work on the generation of electric potential. We first give a complete formulation of a single cell unit consisting of an electrocyte and a resistor, based on a Poisson-Nernst-Planck (PNP) system with various membrane currents as interfacial conditions for the electrocyte and a Maxwell's model for the resistor. Our previous work can be treated as a special case with an infinite resistor (or open circuit). Using asymptotic analysis, we simplify our PNP system and reduce it to an ordinary differential equation (ODE) based model. Unlike the case of an infinite resistor, our numerical simulations of the new model reveal several distinct features. A finite current is generated, which leads to non-constant electric potentials in the bulk of intracellular and extracellular regions. Furthermore, the current induces an additional action potential (AP) at the non-innervated membrane, contrary to the case of an open circuit where an AP is generated only at the innervated membrane. The voltage drop inside the electrocyte is caused by an internal resistance due to mobile ions. We show that our single cell model can be used as the basis for a system with stacked electrocytes and the total current during the discharge of an electric eel can be estimated by using our model. Copyright © 2020 Elsevier Ltd. All rights reserved. |
Keyword | Asymptotic analysis Electric discharge Electrocytes Numerical simulation Poisson-Nernst-Planck system |
DOI | 10.1016/j.jtbi.2020.110294 |
URL | View source |
Indexed By | SCIE |
Language | 英语English |
WOS Research Area | Life Sciences & Biomedicine - Other Topics ; Mathematical & Computational Biology |
WOS Subject | Biology ; Mathematical & Computational Biology |
WOS ID | WOS:000537670700006 |
Citation statistics | |
Document Type | Journal article |
Identifier | http://repository.uic.edu.cn/handle/39GCC9TT/2159 |
Collection | Faculty of Science and Technology |
Corresponding Author | Huang, Huaxiong |
Affiliation | 1.Department of Mathematics, University of California, Riverside, CA 92521, U.S.A. 2.Department of Mathematics & Statistics, York University, Toronto, Ontario M3J 1P3, Canada 3.Department of Applied Mathematics, Feng Chia University, Taichung 40724, Taiwan, China 4.BNU-UIC Joint Mathematical Research Centre, Zhuhai, Guangdong 519087, China 5.Department of Computer Science, University of Toronto, Toronto, Ontario M5T 3A1, Canada |
Recommended Citation GB/T 7714 | Song, Zilong,Cao, Xiulei,Horng, Tzyy-Lenget al. Electric discharge of electrocytes: Modelling, analysis and simulation[J]. Journal of theoretical biology, 2020, 498. |
APA | Song, Zilong, Cao, Xiulei, Horng, Tzyy-Leng, & Huang, Huaxiong. (2020). Electric discharge of electrocytes: Modelling, analysis and simulation. Journal of theoretical biology, 498. |
MLA | Song, Zilong,et al."Electric discharge of electrocytes: Modelling, analysis and simulation". Journal of theoretical biology 498(2020). |
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