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Electrophysiological Mechanisms and Validation of Ferritin-Based Magnetogenetics for Remote Control of Neurons.

Publication ,  Journal Article
Hernández-Morales, M; Morales-Weil, K; Han, SM; Han, V; Tran, T; Benner, EJ; Pegram, K; Meanor, J; Miller, EW; Kramer, RH; Liu, C
Published in: J Neurosci
July 24, 2024

Magnetogenetics was developed to remotely control genetically targeted neurons. A variant of magnetogenetics uses magnetic fields to activate transient receptor potential vanilloid (TRPV) channels when coupled with ferritin. Stimulation with static or RF magnetic fields of neurons expressing these channels induces Ca2+ transients and modulates behavior. However, the validity of ferritin-based magnetogenetics has been questioned due to controversies surrounding the underlying mechanisms and deficits in reproducibility. Here, we validated the magnetogenetic approach Ferritin-iron Redistribution to Ion Channels (FeRIC) using electrophysiological (Ephys) and imaging techniques. Previously, interference from RF stimulation rendered patch-clamp recordings inaccessible for magnetogenetics. We solved this limitation for FeRIC, and we studied the bioelectrical properties of neurons expressing TRPV4 (nonselective cation channel) and transmembrane member 16A (TMEM16A; chloride-permeable channel) coupled to ferritin (FeRIC channels) under RF stimulation. We used cultured neurons obtained from the rat hippocampus of either sex. We show that RF decreases the membrane resistance (Rm) and depolarizes the membrane potential in neurons expressing TRPV4FeRIC RF does not directly trigger action potential firing but increases the neuronal basal spiking frequency. In neurons expressing TMEM16AFeRIC, RF decreases the Rm, hyperpolarizes the membrane potential, and decreases the spiking frequency. Additionally, we corroborated the previously described biochemical mechanism responsible for RF-induced activation of ferritin-coupled ion channels. We solved an enduring problem for ferritin-based magnetogenetics, obtaining direct Ephys evidence of RF-induced activation of ferritin-coupled ion channels. We found that RF does not yield instantaneous changes in neuronal membrane potentials. Instead, RF produces responses that are long-lasting and moderate, but effective in controlling the bioelectrical properties of neurons.

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Published In

J Neurosci

DOI

EISSN

1529-2401

Publication Date

July 24, 2024

Volume

44

Issue

30

Location

United States

Related Subject Headings

  • TRPV Cation Channels
  • Rats, Sprague-Dawley
  • Rats
  • Patch-Clamp Techniques
  • Neurons
  • Neurology & Neurosurgery
  • Membrane Potentials
  • Male
  • Magnetic Fields
  • Hippocampus
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Hernández-Morales, M., Morales-Weil, K., Han, S. M., Han, V., Tran, T., Benner, E. J., … Liu, C. (2024). Electrophysiological Mechanisms and Validation of Ferritin-Based Magnetogenetics for Remote Control of Neurons. J Neurosci, 44(30). https://doi.org/10.1523/JNEUROSCI.1717-23.2024
Hernández-Morales, Miriam, Koyam Morales-Weil, Sang Min Han, Victor Han, Tiffany Tran, Eric J. Benner, Kelly Pegram, et al. “Electrophysiological Mechanisms and Validation of Ferritin-Based Magnetogenetics for Remote Control of Neurons.J Neurosci 44, no. 30 (July 24, 2024). https://doi.org/10.1523/JNEUROSCI.1717-23.2024.
Hernández-Morales M, Morales-Weil K, Han SM, Han V, Tran T, Benner EJ, et al. Electrophysiological Mechanisms and Validation of Ferritin-Based Magnetogenetics for Remote Control of Neurons. J Neurosci. 2024 Jul 24;44(30).
Hernández-Morales, Miriam, et al. “Electrophysiological Mechanisms and Validation of Ferritin-Based Magnetogenetics for Remote Control of Neurons.J Neurosci, vol. 44, no. 30, July 2024. Pubmed, doi:10.1523/JNEUROSCI.1717-23.2024.
Hernández-Morales M, Morales-Weil K, Han SM, Han V, Tran T, Benner EJ, Pegram K, Meanor J, Miller EW, Kramer RH, Liu C. Electrophysiological Mechanisms and Validation of Ferritin-Based Magnetogenetics for Remote Control of Neurons. J Neurosci. 2024 Jul 24;44(30).

Published In

J Neurosci

DOI

EISSN

1529-2401

Publication Date

July 24, 2024

Volume

44

Issue

30

Location

United States

Related Subject Headings

  • TRPV Cation Channels
  • Rats, Sprague-Dawley
  • Rats
  • Patch-Clamp Techniques
  • Neurons
  • Neurology & Neurosurgery
  • Membrane Potentials
  • Male
  • Magnetic Fields
  • Hippocampus