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Published on: July 16, 2013
Mechanism of gating by calcium in connexin hemichannels
William Lopez1, Jayalakshmi Ramachandran1, Abdelaziz Alsamarah2
1Department of Pharmacology, Physiology and Neuroscience, New Jersey Medical School, Rutgers University, Newark, NJ 07103.
Insights
Extracellular calcium (Ca2+) controls connexin hemichannel opening via electrostatic networks. Disrupting these networks, particularly a Ca2+-gating ring, facilitates hemichannel closing, revealing a key gating mechanism.
Area of Science:
- Cell biology
- Biophysics
- Structural biology
Background:
- Aberrant connexin hemichannel opening is linked to diseases like ischemia and muscular dystrophy.
- Extracellular calcium (Ca2+) is crucial for regulating hemichannel activity and maintaining cell viability.
Purpose of the Study:
- To investigate the role of charged residues forming electrostatic networks at the hemichannel pore entrance in Ca2+ gating.
- To elucidate the mechanism by which extracellular Ca2+ controls hemichannel function.
Main Methods:
- Molecular dynamics simulations to model Ca2+ interactions and salt bridge disruption.
- Experimental mutagenesis to disrupt electrostatic networks and assess hemichannel closing.
- Accessibility studies to determine the location of the Ca2+-gating ring relative to the physical gate.
Main Results:
- Molecular dynamics revealed specific Ca2+ interaction sites that disrupt salt bridges in open hemichannels.
- Mutations disrupting these salt bridges promoted hemichannel closing.
- A Ca2+-gating ring, formed by two negative residues, was identified near the pore entrance but does not constitute the physical gate.
Conclusions:
- Intra- and intersubunit electrostatic networks at the hemichannel pore entrance are critical for gating.
- Extracellular Ca2+ tightly controls hemichannel gating through these networks.
- A general mechanism for Ca2+ gating across connexin hemichannel isoforms is proposed.
Abstract:
Aberrant opening of nonjunctional connexin hemichannels at the plasma membrane is associated with many diseases, including ischemia and muscular dystrophy. Proper control of hemichannel opening is essential to maintain cell viability and is achieved by physiological levels of extracellular Ca2+, which drastically reduce hemichannel activity. Here we examined the role of conserved charged residues that form electrostatic networks near the extracellular entrance of the connexin pore, a region thought to be involved in gating rearrangements of hemichannels. Molecular dynamics simulations indicate discrete sites for Ca2+ interaction and consequent disruption of salt bridges in the open hemichannels. Experimentally, we found that disruption of these salt bridges by mutations facilitates hemichannel closing. Two negatively charged residues in these networks are putative Ca2+ binding sites, forming a Ca2+-gating ring near the extracellular entrance of the pore. Accessibility studies showed that this Ca2+-bound gating ring does not prevent access of ions or small molecules to positions deeper into the pore, indicating that the physical gate is below the Ca2+-gating ring. We conclude that intra- and intersubunit electrostatic networks at the extracellular entrance of the hemichannel pore play critical roles in hemichannel gating reactions and are tightly controlled by extracellular Ca2+ Our findings provide a general mechanism for Ca2+ gating among different connexin hemichannel isoforms.
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