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Input–output relationship in galvanotactic response of Dictyostelium cells

机译:Dictyostelium细胞的galacticnotactic反应中的输入-输出关系

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Under a direct current electric field, Dictyostelium cells exhibit migration towards the cathode. To determine the input–output relationship of the cell's galvanotactic response, we developed an experimental instrument in which electric signals applied to the cells are highly reproducible and the motile response are analyzed quantitatively. With no electric field, the cells moved randomly in all directions. Upon applying an electric field, cell migration speeds became about 1.3 times faster than those in the absence of an electric field. Such kinetic effects of electric fields on the migration were observed for cells stimulated between 0.25 and 10 V/cm of the field strength. The directions of cell migrations were biased toward the cathode in a positive manner with field strength, showing galvanotactic response in a dose-dependent manner. Quantitative analysis of the relationship between field strengths and directional movements revealed that the biased movements of the cells depend on the square of electric field strength, which can be described by one simple phenomenological equation. The threshold strength for the galvanotaxis was between 0.25 and 1 V/cm. Galvanotactic efficiency reached to half-maximum at 2.6 V/cm, which corresponds to an approximate 8 mV voltage difference between the cathode and anode direction of 10 μm wide, round cells. Based on these results, possible mechanisms of galvanotaxis in Dictyostelium cells were discussed. This development of experimental system, together with its good microscopic accessibility for intracellular signaling molecules, makes Dictyostelium cells attractive as a model organism for elucidating stochastic processes in the signaling systems responsible for cell motility and its regulations.
机译:在直流电场下,盘基网状细胞表现出向阴极的迁移。为了确定细胞的触角反应的输入-输出关系,我们开发了一种实验仪器,在该仪器中,可高度重现施加到细胞的电信号,并对运动反应进行定量分析。在没有电场的情况下,细胞沿各个方向随机移动。施加电场后,细胞迁移速度比不存在电场时的迁移速度快约1.3倍。对于电场强度在0.25和10 V / cm之间刺激的细胞,观察到电场对迁移的这种动力学影响。细胞迁移的方向以场强的正向偏压向阴极,以剂量依赖的方式显示电流调节反应。对场强与方向运动之间关系的定量分析表明,细胞的偏向运动取决于电场强度的平方,这可以用一个简单的现象学方程来描述。通电角度的阈值强度在0.25和1 V / cm之间。变电法效率在2.6 V / cm处达到最大值的一半,这对应于10μm宽圆形电池的阴极和阳极方向之间的大约8 mV电压差。基于这些结果,讨论了Dictyostelium细胞中galnonotaxis的可能机制。实验系统的发展,以及其对细胞内信号分子的良好的微观可达性,使Dictyostelium细胞作为模型生物吸引人,以阐明负责细胞运动及其调控的信号系统中的随机过程。

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