The murine HCN3 gene encodes a hyperpolarization-activated cation channel with slow kinetics and unique response to

Pavel Mistrík1, Robert Mader, Stylianos Michalakis

  • 1Department of Pharmazie, Pharmakologie für Naturwissenschaften, Ludwig-Maximilians Universität München, Butenandtstr. 7, 81377 München, Germany.

Insights

Hyperpolarization-activated cyclic nucleotide-gated (HCN) channels regulate cell excitability. This study characterized HCN3 channels, revealing unique properties and expression patterns in the brain and heart.

Area of Science:

  • Neuroscience
  • Cardiovascular Biology
  • Ion Channel Physiology

Background:

  • Hyperpolarization-activated cation channels (HCN) are vital for cell excitability, cardiac, and neuronal pacemaker activity.
  • Dysfunction of HCN channels is linked to diseases like arrhythmia, epilepsy, and neuropathic pain.
  • HCN channel isoforms 1, 2, and 4 are well-studied, but HCN3's function remained largely unknown due to expression challenges.

Purpose of the Study:

  • To characterize the functional properties of the HCN3 channel.
  • To investigate the expression pattern of HCN3 in the mouse brain and heart.

Main Methods:

  • Lentiviral gene transfer was used to overexpress HCN3 in HEK293T cells.
  • Electrophysiological recordings assessed HCN3 channel kinetics and pharmacology.
  • Western blot and RT-PCR analyzed HCN3 protein and transcript expression in mouse tissues.

Main Results:

  • HCN3 currents exhibited slow activation/deactivation kinetics and were blocked by Cs+ and ivabradine.
  • Cyclic nucleotides (cAMP/cGMP) did not affect kinetics but caused a unique hyperpolarizing shift in V0.5.
  • HCN3 protein was highly expressed in the olfactory bulb and hypothalamus, with low cortical expression.
  • HCN3 transcripts were detected in the heart ventricle.

Conclusions:

  • HCN3 possesses distinct biophysical properties, including an unprecedented response to cyclic nucleotides.
  • The unique expression profile in the brain and heart suggests a specialized role for HCN3.
  • Further research into HCN3 is warranted to understand its contribution to physiological and pathological processes.

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