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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.
Abstract:
Connexin (Cx) protein forms hemichannels and gap junctional channels, which play diverse and profound roles in human physiology and diseases. Gap junctions are arrays of intercellular channels formed by the docking of two hemichannels from adjacent cells. Each hexameric hemichannel contains the same or different Cx isoform. Although homomeric Cxs forms have been largely described functionally and structurally, the stoichiometry and arrangement of heteromeric Cx channels remain unknown. The latter, however, are widely expressed in human tissues and variation might have important implications on channel function. Investigating properties of heteromeric Cx channels is challenging considering the high number of potential subunit arrangements and stoichiometries, even when only combining two Cx isoforms. To tackle this problem, we engineered an HA tag onto Cx26 or Cx30 subunits and imaged hemichannels that were liganded by Fab-epitope antibody fragments via atomic force microscopy. For Cx26-HA/Cx30 or Cx30-HA/Cx26 heteromeric channels, the Fab-HA binding distribution was binomial with a maximum of three Fab-HA bound. Furthermore, imaged Cx26/Cx30-HA triple liganded by Fab-HA showed multiple arrangements that can be derived from the law of total probabilities. Atomic force microscopy imaging of ringlike structures of Cx26/Cx30-HA hemichannels confirmed these findings and also detected a polydisperse distribution of stoichiometries. Our results indicate a dominant subunit stoichiometry of 3Cx26:3Cx30 with the most abundant subunit arrangement of Cx26-Cx26-Cx30-Cx26-Cx30-Cx30. To our knowledge, this is the first time that the molecular architecture of heteromeric Cx channels has been revealed, thus providing the basis to explore the functional effect of these channels in biology.
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