Related Experiment Videos

Effects of defolliculation on membrane current responses of Xenopus oocytes

R Miledi1, R M Woodward

  • 1Department of Psychobiology, University of California, Irvine 92717.

The Journal of Physiology
|September 1, 1989
PubMed

Insights

Cyclic nucleotide-activated potassium currents in Xenopus oocytes originate in surrounding follicular cells, not the oocyte itself. Chloride currents, however, are primarily generated within the oocyte.

Area of Science:

  • Cellular Electrophysiology
  • Oocyte Biology
  • Signal Transduction

Background:

  • Xenopus oocytes exhibit K+ and Cl- currents in response to various stimuli.
  • Cyclic nucleotides are implicated as intracellular messengers in K+ current activation.
  • Follicular cells are electrically coupled to oocytes via gap junctions.

Purpose of the Study:

  • To determine whether K+ and Cl- currents in Xenopus oocytes are generated in the oocyte or its surrounding follicular cells.
  • To investigate the role of follicular cells in mediating oocyte membrane currents.

Main Methods:

  • Defolliculation of Xenopus oocytes using enzymatic or manual methods.
  • Scanning electron microscopy to confirm follicular cell removal.
  • Comparison of membrane current responses in defolliculated versus follicle-enclosed oocytes.

Main Results:

  • Defolliculation drastically reduced or abolished K+ currents evoked by hormones, neurotransmitters, forskolin, and cyclic nucleotides.
  • Oscillatory Cl- currents induced by acetylcholine and divalent cations were preserved after defolliculation.
  • Intra-oocyte cyclic AMP injection potentiated calcium-dependent Cl- currents but had minimal effect on acetylcholine-induced Cl- currents.

Conclusions:

  • Cyclic nucleotide-activated K+ currents are primarily generated in follicular cells and transmitted to the oocyte via gap junctions.
  • Oscillatory Cl- currents in response to acetylcholine and divalent cations are largely produced within the oocyte itself.

Related Concept Videos