Changes in membrane potential during the progression of MCF-7 human mammary tumor cells through the cell cycle

W F Wonderlin1, K A Woodfork, J S Strobl

  • 1Department of Pharmacology and Toxicology, Robert C. Byrd Health Sciences Center, West Virginia University, Morgantown 26506, USA.

Insights

MCF-7 cells hyperpolarize during the cell cycle, likely due to increased potassium permeability. This membrane potential shift is linked to cell cycle progression from G0/G1 into S phase.

Area of Science:

  • Cell Biology
  • Molecular Physiology

Background:

  • ATP-sensitive potassium channel blockers arrest MCF-7 cells in G0/G1.
  • Cell cycle progression may involve changes in membrane potential and ion permeability.

Purpose of the Study:

  • Investigate cell cycle-dependent changes in MCF-7 cell membrane potential.
  • Determine if K+ permeability changes correlate with membrane potential shifts.

Main Methods:

  • Measurement of MCF-7 cell resting membrane potentials using sharp glass microelectrodes.
  • Pharmacological cell cycle arrest in G0/G1 and subsequent release into S phase.
  • Analysis of membrane potential sensitivity to ion substitutions (K+, Na+, Cl-).

Main Results:

  • MCF-7 cell membrane potentials varied, categorized into depolarized (D), intermediate depolarized (ID), intermediate hyperpolarized (IH), and hyperpolarized (H) groups.
  • Pharmacological G0/G1 arrest induced depolarization (shift to D group).
  • Release from arrest into S phase resulted in hyperpolarization (shift to IH and H groups).
  • Membrane potential correlated with K+:Na+ permeability ratio and was sensitive to K+ and Na+.

Conclusions:

  • MCF-7 cells exhibit hyperpolarization as they progress through G0/G1 into S phase.
  • This hyperpolarization is likely mediated by increased plasma membrane K+ permeability.