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Updated: Feb 1, 2026

High Throughput Microinjections of Sea Urchin Zygotes
Published on: January 21, 2014
cAMP binds to closed, inactivated, and open sea urchin HCN channels in a state-dependent manner
Vinay Idikuda1, Weihua Gao1, Zhuocheng Su1
1Department of Physiology and Biophysics, School of Medicine, Virginia Commonwealth University, Richmond, VA.
Abstract:
Hyperpolarization-activated cyclic-nucleotide-modulated (HCN) channels are nonselective cation channels that regulate electrical activity in the heart and brain. Previous studies of mouse HCN2 (mHCN2) channels have shown that cAMP binds preferentially to and stabilizes these channels in the open state-a simple but elegant implementation of ligand-dependent gating. Distinct from mammalian isoforms, the sea urchin (spHCN) channel exhibits strong voltage-dependent inactivation in the absence of cAMP. Here, using fluorescently labeled cAMP molecules as a marker for cAMP binding, we report that the inactivated spHCN channel displays reduced cAMP binding compared with the closed channel. The reduction in cAMP binding is a voltage-dependent process but proceeds at a much slower rate than the movement of the voltage sensor. A single point mutation in the last transmembrane domain near the channel's gate, F459L, abolishes inactivation and concurrently reverses the response to hyperpolarizing voltage steps from a decrease to an increase in cAMP binding. ZD7288, an open channel blocker that interacts with a region close to the activation/inactivation gate, dampens the reduction of cAMP binding to inactivated spHCN channels. In addition, compared with closed and "locked" closed channels, increased cAMP binding is observed in channels purposely locked in the open state upon hyperpolarization. Thus, the order of cAMP-binding affinity, measured by the fluorescence signal from labeled cAMP, ranges from high in the open state to intermediate in the closed state to low in the inactivated state. Our work on spHCN channels demonstrates intricate state-dependent communications between the gate and ligand-binding domain and provides new mechanistic insight into channel inactivation/desensitization.
Insights
Sea urchin HCN channels show reduced cAMP binding when inactivated, a voltage-dependent process. A mutation reverses this, revealing intricate communication between channel gating and ligand binding.
Area of Science:
- Molecular biology
- Biophysics
- Ion channel function
Background:
- Hyperpolarization-activated cyclic-nucleotide-modulated (HCN) channels regulate cardiac and neuronal electrical activity.
- Mammalian HCN channels are stabilized in the open state by cAMP binding.
- Sea urchin HCN (spHCN) channels exhibit unique voltage-dependent inactivation absent in mammals.
Purpose of the Study:
- Investigate the relationship between spHCN channel inactivation and cAMP binding.
- Elucidate the mechanistic basis of voltage-dependent inactivation in spHCN channels.
- Determine the impact of specific mutations and blockers on spHCN channel gating and ligand interaction.
Main Methods:
- Utilized fluorescently labeled cAMP to quantify binding to spHCN channels in different functional states.
- Employed electrophysiology to assess voltage-dependent properties and inactivation.
- Introduced a point mutation (F459L) in the transmembrane domain to probe inactivation mechanisms.
- Applied an open channel blocker (ZD7288) to investigate its effect on cAMP binding.
Main Results:
- Inactivated spHCN channels exhibit significantly reduced cAMP binding compared to closed channels.
- This reduction in binding is voltage-dependent and occurs slower than voltage sensor movement.
- The F459L mutation abolishes inactivation and reverses the voltage-dependence of cAMP binding.
- ZD7288 and locking channels in the open state alter cAMP binding affinity, with open state showing highest affinity.
Conclusions:
- spHCN channel inactivation is associated with decreased cAMP binding affinity.
- There is complex, state-dependent communication between the channel gate and the cAMP binding domain.
- This study provides novel mechanistic insights into ion channel inactivation and desensitization processes.
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