Related Experiment Video
Updated: Aug 10, 2026

Postsynaptic Recordings at Afferent Dendrites Contacting Cochlear Inner Hair Cells: Monitoring Multivesicular Release at a Ribbon Synapse
Published on: February 10, 2011
Electrophysiological properties of Achlya hyphae: ionic currents studied by intracellular potential recording
Abstract:
The electrical properties of the water mold Achlya bisexualis were investigated using intracellular microelectrodes. Hyphae growing in a defined medium maintained a membrane potential (Vm) of -150 to -170 mV, interior negative. Under the conditions used here, this potential was insensitive to changes in the inorganic ion composition of the medium. Changes in external pH did affect Vm, but only outside the physiological pH range. By contrast, the addition of respiratory inhibitors caused a rapid depolarization without affecting the conductance of the plasma membrane. Taken together these findings strongly suggest that the membrane potential is governed by an electrogenic ion pump rather than by an ionic diffusion potential. Previous work from this laboratory showed that Achlya hyphae generate a transcellular proton current that enters the growing tip, flows along the hyphal length, and exits distally from the trunk. These initial experiments used an extracellular vibrating electrode, and I now report intracellular electrical recordings which support the hypothesis that protons enter the tip by symport with amino acids and are expelled distally by a proton-translocating ATPase. Most significantly, current flowing intracellularly along the hyphal length is associated with a cytoplasmic electric field of 0.2 V/cm or greater. Conditions that inhibit the current also abolish the internal field, suggesting that these two phenomena are closely linked.
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.

