The SH3-binding domain of Cx43 participates in loop/tail interactions critical for Cx43-hemichannel activity

Jegan Iyyathurai1, Nan Wang2, Catheleyne D'hondt1

  • 1Laboratory of Molecular and Cellular Signaling, Department Cellular and Molecular Medicine, KU Leuven, Campus Gasthuisberg O/N-1 Bus 802, Herestraat 49, 3000, Louvain, Belgium.

Insights

Connexin 43 (Cx43) hemichannels are regulated by interactions between their C-terminal tail and cytoplasmic loop. The SH3-binding domain, along with the CT9 region, critically controls Cx43 hemichannel activity, especially under high calcium conditions.

Area of Science:

  • Cellular biology
  • Molecular biology
  • Biophysics

Background:

  • Connexin 43 (Cx43) hemichannels mediate cell communication through ATP release.
  • Dysregulated Cx43 hemichannel opening can lead to cell death.
  • Cx43 hemichannel activity is regulated by interactions between its C-terminal tail (CT) and cytoplasmic loop (CL), specifically the L2 domain.

Purpose of the Study:

  • To identify additional regulatory regions within the Cx43 CT that interact with the L2 domain.
  • To investigate the functional role of the SH3-binding domain in Cx43 hemichannel activity.
  • To elucidate the combined roles of the CT9 and SH3-binding domains in Cx43 hemichannel regulation.

Main Methods:

  • Biochemical assays to assess binding between Cx43 CT regions and the L2 domain.
  • Patch clamp electrophysiology to study unitary Cx43 hemichannel activity.
  • Functional studies involving deletion mutants of Cx43 CT domains.

Main Results:

  • The SH3-binding domain of Cx43 CT was identified as a second L2-binding region.
  • The SH3-binding domain restored activity in CT-truncated Cx43 hemichannels and alleviated inhibition in full-length hemichannels under high calcium.
  • Deletion of either the SH3-binding domain or the CT9 region reduced hemichannel activity, while deleting both abolished it.

Conclusions:

  • The Cx43 SH3-binding domain, in addition to the CT9 region, is crucial for controlling hemichannel activity.
  • These regulatory interactions are particularly important under conditions of high intracellular calcium ([Ca2+]i).
  • Understanding these regulatory mechanisms may provide insights into pathological hemichannel opening.

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