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Bioelectrical signals and ion channels in the modeling of multicellular patterns and cancer biophysics

机译:多细胞模式和癌症生物物理学建模中的生物电信号和离子通道

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摘要

Bioelectrical signals and ion channels are central to spatial patterns in cell ensembles, a problem of fundamental interest in positional information and cancer processes. We propose a model for electrically connected cells based on simple biological concepts: i) the membrane potential of a single cell characterizes its electrical state; ii) the long-range electrical coupling of the multicellular ensemble is realized by a network of gap junction channels between neighboring cells; and iii) the spatial distribution of an external biochemical agent can modify the conductances of the ion channels in a cell membrane and the multicellular electrical state. We focus on electrical effects in small multicellular ensembles, ignoring slow diffusional processes. The spatio-temporal patterns obtained for the local map of cell electric potentials illustrate the normalization of regions with abnormal cell electrical states. The effects of intercellular coupling and blocking of specific channels on the electrical patterns are described. These patterns can regulate the electrically-induced redistribution of charged nanoparticles over small regions of a model tissue. The inclusion of bioelectrical signals provides new insights for the modeling of cancer biophysics because collective multicellular states show electrical coupling mechanisms that are not readily deduced from biochemical descriptions at the individual cell level.
机译:生物电信号和离子通道是细胞集合体中空间模式的核心,这是位置信息和癌症过程中最重要的问题。我们提出了一个基于简单生物学概念的电连接细胞模型:i)单个细胞的膜电位表征其电状态; ii)通过相邻细胞之间的间隙连接通道网络实现多细胞集合体的远程电耦合; iii)外部生化试剂的空间分布可以改变细胞膜中离子通道的电导和多细胞电状态。我们专注于小型多细胞集合体中的电效应,忽略了缓慢的扩散过程。从细胞电势的局部图获得的时空模式说明具有异常细胞电状态的区域的标准化。描述了细胞间偶联和特定通道的阻断对电模式的影响。这些模式可以调节带电纳米粒子在模型组织的小区域上的电诱导再分布。包含生物电信号为癌症生物物理学建模提供了新的见识,因为集体多细胞状态显示了电耦合机制,而该机制在单个细胞水平上不易从生化描述中推导出来。

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