Gating charges in the activation and inactivation processes of the HERG channel

Mei Zhang1, Jie Liu, Gea-Ny Tseng

  • 1Department of Physiology, Virginia Commonwealth University, 1101 E. Marshall St., Richmond, VA 23298, USA.

Insights

The hERG channel

Area of Science:

  • Molecular biology
  • Biophysics
  • Ion channel function

Background:

  • The human Ether-à-go-go-Related Gene (hERG) channel exhibits slow activation and rapid, voltage-sensitive inactivation.
  • Gating currents suggest hERG's charge transfer involves multiple domains.
  • Understanding hERG gating is crucial for cardiac electrophysiology and drug safety.

Purpose of the Study:

  • Identify which positive charges in the S4 domain of hERG contribute to activation gating charge transfer.
  • Determine if the D466 residue in the S2 domain contributes to gating charge.
  • Investigate if the S4 domain is the sole voltage sensor for hERG inactivation.

Main Methods:

  • Site-directed mutagenesis of hERG S4 positive charges and S2 D466 to cysteine.
  • Measurement of gating charge transfer during activation (z(a)) and inactivation (z(i)).
  • Assessment of cysteine accessibility to MTSET to probe voltage sensor location and movement.

Main Results:

  • Neutralizing outer S4 positive charges and D466 reduced activation gating charge (z(a)).
  • Cysteine mutations at these sites showed state-dependent accessibility changes.
  • Inner S4 charge neutralization and all mutations did not affect inactivation gating charge (z(i)).

Conclusions:

  • hERG activation gating involves outer S4 charges and potentially S2 D466, similar to Shaker channels but with less charge.
  • hERG inactivation gating likely involves voltage-sensing domains beyond S4.
  • These findings refine models of hERG channel voltage sensing mechanisms.

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