Polydisperse molecular architecture of connexin 26/30 heteromeric hemichannels revealed by atomic force microscopy

Pamela A Naulin1, Benjamin Lozano1, Christian Fuentes1

  • 1Department of Physiology, Faculty of Biological Sciences, Pontificia Universidad Católica de Chile, Santiago, Chile.

Insights

This study reveals the molecular architecture of heteromeric connexin (Cx) channels, specifically Cx26/Cx30, using atomic force microscopy. Findings show a dominant 3:3 subunit stoichiometry and arrangement, advancing our understanding of these crucial cellular communication channels.

Area of Science:

  • Cellular Biology
  • Biophysics
  • Structural Biology

Background:

  • Connexin (Cx) proteins form hemichannels and gap junctional channels vital for human physiology and disease.
  • While homomeric Cx channels are well-characterized, the structure of heteromeric Cx channels, composed of different Cx isoforms, remains largely unknown.
  • Understanding heteromeric Cx channel architecture is crucial due to their widespread expression and potential functional implications.

Purpose of the Study:

  • To determine the stoichiometry and subunit arrangement of heteromeric connexin channels, specifically Cx26 and Cx30.
  • To overcome the challenge of investigating complex heteromeric channel structures.
  • To provide the first detailed molecular architecture of heteromeric Cx channels.

Main Methods:

  • Engineered HA tags onto Cx26 or Cx30 subunits.
  • Imaged hemichannels using atomic force microscopy (AFM) after ligation with Fab-epitope antibody fragments.
  • Analyzed Fab-HA binding distributions and AFM images of ringlike structures to deduce stoichiometry and arrangement.

Main Results:

  • Fab-HA binding distribution for Cx26-HA/Cx30 and Cx30-HA/Cx26 heteromeric channels was binomial, with a maximum of three Fab-HA bound.
  • Atomic force microscopy imaging revealed a polydisperse distribution of stoichiometries.
  • A dominant subunit stoichiometry of 3Cx26:3Cx30 was identified, with a prevalent arrangement of Cx26-Cx26-Cx30-Cx26-Cx30-Cx30.

Conclusions:

  • This study presents the first detailed molecular architecture of heteromeric connexin channels (Cx26/Cx30).
  • The findings elucidate the predominant subunit stoichiometry and arrangement within these channels.
  • This structural insight provides a foundation for exploring the functional roles of heteromeric Cx channels in biological systems.

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