Electrophysiological properties of Achlya hyphae: ionic currents studied by intracellular potential recording

Insights

The membrane potential in water mold hyphae is driven by an electrogenic proton pump, not ion diffusion. This pump generates a significant internal electric field, crucial for water mold growth.

Area of Science:

  • * Plant and Fungal Biology
  • * Cellular Electrophysiology
  • * Biophysics

Background:

  • * The water mold Achlya bisexualis exhibits complex electrical properties.
  • * Previous studies suggested a transcellular proton current in Achlya hyphae.

Purpose of the Study:

  • * To investigate the electrical properties of Achlya bisexualis hyphae.
  • * To determine the mechanisms governing membrane potential and proton current flow.

Main Methods:

  • * Intracellular microelectrode recordings to measure membrane potential (Vm).
  • * Application of respiratory inhibitors and manipulation of external ion composition and pH.
  • * Analysis of intracellular electrical fields associated with proton current.

Main Results:

  • * Achlya hyphae maintained a stable Vm (-150 to -170 mV) insensitive to ion changes but affected by extreme pH.
  • * Respiratory inhibitors caused depolarization, indicating an electrogenic pump mechanism.
  • * Intracellular proton current correlated with a strong cytoplasmic electric field (>0.2 V/cm).

Conclusions:

  • * The membrane potential in Achlya is primarily determined by an electrogenic ion pump.
  • * Proton entry at the tip (symport) and exit via ATPase distally are supported.
  • * The intracellular electric field is directly linked to the transcellular proton current.

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