Effect of Direct Current Electric Fields on Cone Like Retinal Photoreceptor Cells

Juliana Guerra-Hühne1,2, Sharanya Bola1, Daniela Calzia3

  • 1Department of Anatomy, Medical Theoretical Center, TU-Dresden, 01069 Dresden, Germany.

Abstract

Insights

Direct current electric fields (dcEF) induce significant cellular changes in retinal photoreceptor cells, including organelle polarization and increased ATP production. These findings advance understanding of electric field therapy for retinal diseases.

Area of Science:

  • Cell Biology
  • Neuroscience
  • Biophysics

Background:

  • Electric fields (EF) are utilized in therapeutic applications for nerve and tissue injuries.
  • The cellular and molecular effects of EF stimulation, particularly on retinal photoreceptor cells, are not well understood.
  • Previous in vitro studies indicate direct current electric fields (dcEF) influence cell division, polarity, shape, and motility.

Purpose of the Study:

  • To characterize the cellular and molecular responses of 661W retinal cone photoreceptor cells to dcEF stimulation.
  • To investigate organelle polarization, mitochondrial membrane potential, oxygen consumption, ATP/ADP ratio, and gene expression under dcEF exposure.

Main Methods:

  • 661W cells were exposed to a constant dcEF (5 V/cm) for 30 minutes or 5 hours.
  • Techniques included immunofluorescence, live cell imaging, and RNA sequencing.
  • Measurements involved cell displacement, speed, ATP production, oxygen consumption, and gene expression analysis.

Main Results:

  • dcEF exposure caused cells to align perpendicular to the field, with membrane depolarization at the cathodal side.
  • Microtubules, actin filaments, and the Golgi apparatus reoriented towards the cathode, enhancing cell migration.
  • Mitochondria migrated to the cathodal side, correlating with increased ATP production (115.2%) and oxygen consumption (113.3%).
  • RNA sequencing revealed upregulation of genes associated with cellular movement and signaling.

Conclusions:

  • dcEF stimulation induces significant cellular polarization and migration in retinal photoreceptor cells.
  • The observed metabolic and genetic changes suggest a mechanism for EF's therapeutic potential in retinal diseases.
  • This study provides novel insights into the cellular responses to dcEF, crucial for developing EF-based therapies.

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