Related Experiment Video
Updated: May 26, 2026

Intracellular Recording, Sensory Field Mapping, and Culturing Identified Neurons in the Leech, Hirudo medicinalis
Published on: November 4, 2013
Functional properties and cell type specific distribution of I(h) channels in leech neurons
Ednan Gerard1, Peter Hochstrate, Paul-Wilhelm Dierkes
1Institut für Neurobiologie, Heinrich-Heine-Universität, 40225 Düsseldorf, Germany.
Insights
The hyperpolarization-activated cation current (I(h)) was found in leech neurons, including sensory and Retzius cells. This ion channel influences neuronal firing and membrane potential stability.
Area of Science:
- Neuroscience
- Electrophysiology
- Invertebrate Zoology
Background:
- The hyperpolarization-activated cation current (I(h)) plays crucial roles in neuronal function across various species.
- Its presence and specific properties in leech neurons remain largely uncharacterized.
Purpose of the Study:
- To investigate the distribution and functional characteristics of I(h) in identified leech neurons.
- To elucidate the biophysical and pharmacological properties of I(h) in leech pressure (P) neurons.
Main Methods:
- Electrophysiological recordings from identified leech neurons within intact segmental ganglia.
- Analysis of I(h) activation kinetics, ion dependency, reversal potential, and pharmacological sensitivity.
Main Results:
- I(h) was detected in touch (T), pressure (P), noxious (N), and Retzius neurons, with the largest amplitude in P neurons.
- I(h) activation occurred between -65 mV and -100 mV, dependent on both Na(+) and K(+) (p(Na)/p(K) ≈ 0.21).
- The current showed complex activation kinetics and was blocked by Cs(+) but not ZD7288.
Conclusions:
- I(h) is present in multiple leech neuron types, suggesting a conserved role in neuronal excitability.
- The biophysical properties of I(h) in leech P neurons indicate a role in modulating firing patterns and stabilizing membrane potential.
Abstract:
The hyperpolarisation-activated cation current (I(h)) has been described in many vertebrate and invertebrate species and cell types. In neurons, I(h) is involved in rhythmogenesis, membrane potential stabilisation and many other functions. In this work, we investigate the distribution and functional properties of I(h) in identified leech neurons of intact segmental ganglia. We found I(h) in the mechanosensory touch (T), pressure (P) and noxious (N) neurons, as well as in Retzius neurons. The current displayed its largest amplitude in P neurons and we investigated its biophysical and pharmacological properties in these cells. I(h) was half-maximally activated at -65 mV and fully activated at -100 mV. The current mutually depended on both Na(+) and K(+) with a permeability ratio p(Na)/p(K) of ∼0.21. The reversal potential was approximately -35 mV. The time course of activation could be approximated by a single time constant of ∼370 ms at -60 mV, but required two time constants at -80 mV of ∼80 and ∼560 ms. The current was half-maximally blocked by 0.3 mmol l(-1) Cs(+) but was insensitive to the bradycardic agent ZD7288. The physiological function of this channel could be a subtle alteration of the firing behaviour of mechanosensory neurons as well as a stabilisation of the resting membrane potential.
Related Concept Videos
Non-gated Ion Channels
Compared to the gated ion channels, the non-gated channels, also known as leakage or passive channels, have no gating mechanism.
Voltage-gated Ion Channels
Generally, all voltage-gated ion channels have a 'voltage-sensing domain' that spans the lipid bilayer. The charged residues in the sensor move in response to the membrane potential changes that open the channel allowing ions movement. There are several types of...
The Role of Ion Channels in Neuronal Computation
Sometimes a single EPSP is strong enough to induce an action potential in the postsynaptic neuron. However, multiple presynaptic inputs must often create EPSPs around the same time for the postsynaptic neuron to be sufficiently depolarized to fire an action potential.
Action Potentials
Electrochemical Gradient and Channel Proteins: An Overview
The electrical gradient: The electrical gradient across cell membranes refers to the difference in electric charge between the inside and outside of a cell. This difference drives the movement of ions towards or away from the cells. For instance, if the inside of the cell is more negatively charged relative to the...
Action Potential
Membrane potential in neurons
Neurons typically have a resting membrane potential of about -70 millivolts (mV). When they receive...

