Electroencephalographic field influence on calcium momentum waves
Lester Ingber, Marco Pappalepore, Ronald R. Stesiak

TL;DR
This paper explores how macroscopic EEG fields influence calcium ion momentum, suggesting a significant interaction that links large-scale brain activity with microscopic neuronal processes, with implications for understanding memory and attention mechanisms.
Contribution
It introduces a model demonstrating the influence of EEG-derived vector potentials on calcium ion momentum, integrating macroscopic EEG data with microscopic calcium wave dynamics.
Findings
EEG vector potential $ extbf{A}$ can significantly affect calcium ion momentum.
Coupling of calcium wave dynamics with EEG fields supports memory mechanisms.
Modeling shows potential for EEG influence on neuronal calcium signaling.
Abstract
Macroscopic EEG fields can be an explicit top-down neocortical mechanism that directly drives bottom-up processes that describe memory, attention, and other neuronal processes. The top-down mechanism considered are macrocolumnar EEG firings in neocortex, as described by a statistical mechanics of neocortical interactions (SMNI), developed as a magnetic vector potential . The bottom-up process considered are waves prominent in synaptic and extracellular processes that are considered to greatly influence neuronal firings. Here, the complimentary effects are considered, i.e., the influence of on momentum, . The canonical momentum of a charged particle in an electromagnetic field, (SI units), is calculated, where the charge of is , is the…
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