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Method for Identifying Small Molecule Inhibitors of the Protein-protein Interaction Between HCN1 and TRIP8b
Published on: November 11, 2016
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.
Abstract:
Hyperpolarization-activated cation channels of the HCN gene family are crucial for the regulation of cell excitability. Importantly, these channels play a pivotal role in the control of cardiac and neuronal pacemaker activity. Dysfunction of HCN channels has been associated with human diseases, including cardiac arrhythmia, epilepsy, and neuropathic pain. The properties of three HCN channel isoforms (HCN1, HCN2, and HCN4) have been extensively investigated. By contrast, due to the lack of an efficient heterologous expression system, the functional characteristics of HCN3 were by and large unknown so far. Here, we have used lentiviral gene transfer to overexpress HCN3 in HEK293T cells. HCN3 currents revealed slow activation and deactivation kinetics and were effectively blocked by extracellular Cs+ and the bradycardic agent ivabradine. Cyclic AMP and cGMP had no significant impact on activation kinetics but induced a 5-mV shift of the half-maximal activation voltage (V0.5) to more hyperpolarized potentials. A negative shift of V0.5 induced by cyclic nucleotides is an unprecedented feature within the HCN channel family. The expression of HCN3 in mouse brain was examined by Western blot analysis using a specific antibody. High levels of protein were detected in olfactory bulb and hypothalamus. In contrast, only very low expression was found in cortex. Using reverse transcriptase PCR transcripts of HCN3 were also detected in heart ventricle. In conclusion, the distinct expression pattern in conjunction with the unusual biophysical properties implies that HCN3 may play an unique role in the body.
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