4.7 Article

Can Neural Activity Propagate by Endogenous Electrical Field?

期刊

JOURNAL OF NEUROSCIENCE
卷 35, 期 48, 页码 15800-15811

出版社

SOC NEUROSCIENCE
DOI: 10.1523/JNEUROSCI.1045-15.2015

关键词

epileptical; field effect; neural propagation; osmolarity

资金

  1. National Institute of Health (National Institute of Neurological Disorders and Stroke) [1R01NS060757-01]

向作者/读者索取更多资源

It is widely accepted that synaptic transmissions and gap junctions are the major governing mechanisms for signal traveling in the neural system. Yet, a group of neural waves, either physiological or pathological, share the same speed of similar to 0.1 m/s without synaptic transmission or gap junctions, and this speed is not consistent with axonal conduction or ionic diffusion. The only explanation left is an electrical field effect. We tested the hypothesis that endogenous electric fields are sufficient to explain the propagation with in silico and in vitro experiments. Simulation results show that field effects alone can indeed mediate propagation across layers of neurons with speeds of 0.12 +/- 0.09 m/s with pathological kinetics, and 0.11 +/- 0.03 m/s with physiologic kinetics, both generating weak field amplitudes of similar to 2-6 mV/mm. Further, the model predicted that propagation speed values are inversely proportional to the cell-to-cell distances, but do not significantly change with extracellular resistivity, membrane capacitance, or membrane resistance. In vitro recordings in mice hippocampi produced similar speeds (0.10 +/- 0.03 m/s) and field amplitudes (2.5-5 mV/mm), and by applying a blocking field, the propagation speed was greatly reduced. Finally, osmolarity experiments confirmed the model's prediction that cell-to-cell distance inversely affects propagation speed. Together, these results show that despite their weak amplitude, electric fields can be solely responsible for spike propagation at similar to 0.1 m/s. This phenomenon could be important to explain the slow propagation of epileptic activity and other normal propagations at similar speeds.

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