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.

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