4.6 Article

Strength-frequency curve for micromagnetic neurostimulation through excitatory postsynaptic potentials (EPSPs) on rat hippocampal neurons and numerical modeling of magnetic microcoil (μcoil)

期刊

JOURNAL OF NEURAL ENGINEERING
卷 19, 期 1, 页码 -

出版社

IOP Publishing Ltd
DOI: 10.1088/1741-2552/ac4baf

关键词

micromagnetic neurostimulation; microcoil; tetrodotoxin; strength-frequency curve; hippocampus; excitatory post synaptic potential (EPSP); spatial selectivity

资金

  1. Minnesota Partnership for Biotechnology and Medical Genomics [ML2020]
  2. University of Minnesota, Twin Cities
  3. National Science Foundation through the National Nano Coordinated Infrastructure Network (NNCI) [ECCS-2025124]
  4. Robert Hartmann Endowed chair

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This study aimed to investigate the effect of micromagnetic stimulation on hippocampal neurons using a single microcoil prototype called MagPen. The results showed that MagPen could successfully stimulate the CA3 region and induce excitatory post synaptic potential (EPSP) in the CA1 region.
Objective. The objective of this study was to measure the effect of micromagnetic stimulation (mu MS) on hippocampal neurons, by using single microcoil (mu coil) prototype, magnetic pen (MagPen). MagPen will be used to stimulate the CA3 region magnetically and excitatory post synaptic potential (EPSP) response measurements will be made from the CA1 region. The threshold for micromagnetic neurostimulation as a function of stimulation frequency of the current driving the mu coil will be demonstrated. Finally, the optimal stimulation frequency of the current driving the mu coil to minimize power will be estimated. Approach. A biocompatible, watertight, non-corrosive prototype, MagPen was built, and customized such that it is easy to adjust the orientation of the mu coil and its distance over the hippocampal tissue in an in vitro recording setting. Finite element modeling of the mu coil design was performed to estimate the spatial profiles of the magnetic flux density (in T) and the induced electric fields (in V m(-1)). The induced electric field profiles generated at different values of current applied to the mu coil can elicit a neuronal response, which was validated by numerical modeling. The modeling settings for the mu coil were replicated in experiments on rat hippocampal neurons. Main results. The preferred orientation of MagPen over the Schaffer Collateral fibers was demonstrated such that they elicit a neuron response. The recorded EPSPs from CA1 region due to mu MS at CA3 region were validated by applying tetrodotoxin (TTX). Application of TTX to the hippocampal slice blocked the EPSPs from mu MS while after prolonged TTX washout, a partial recovery of the EPSP from mu MS was observed. Finally, it was interpreted through numerical analysis that increasing frequency of the current driving the mu coil, led to a decrease in the current amplitude threshold for micromagnetic neurostimulation. Significance. This work reports that micromagnetic neurostimulation can be used to evoke population EPSP responses in the CA1 region of the hippocampus. It demonstrates the strength-frequency curve for mu MS and its unique features related to orientation dependence of the mu coils, spatial selectivity and stimulation threshold related to distance dependence. Finally, the challenges related to mu MS experiments were studied including ways to overcome them.

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