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Published on: February 8, 2011
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.
Abstract:
The hERG channel has a relatively slow activation process but an extremely fast and voltage-sensitive inactivation process. Direct measurement of hERG's gating current (Piper, D.R., A. Varghese, M.C. Sanguinetti, and M. Tristani-Firouzi. 2003. PNAS. 100:10534-10539) reveals two kinetic components of gating charge transfer that may originate from two channel domains. This study is designed to address three questions: (1) which of the six positive charges in hERG's major voltage sensor, S4, are responsible for gating charge transfer during activation, (2) whether a negative charge in the cytoplasmic half of S2 (D466) also contributes to gating charge transfer, and (3) whether S4 serves as the sole voltage sensor for hERG inactivation. We individually mutate S4's positive charges and D466 to cysteine, and examine (a) effects of mutations on the number of equivalent gating charges transferred during activation (z(a)) and inactivation (z(i)), and (b) sidedness and state dependence of accessibility of introduced cysteine side chains to a membrane-impermeable thiol-modifying reagent (MTSET). Neutralizing the outer three positive charges in S4 and D466 in S2 reduces z(a), and cysteine side chains introduced into these positions experience state-dependent changes in MTSET accessibility. On the other hand, neutralizing the inner three positive charges in S4 does not affect z(a). None of the charge mutations affect z(i). We propose that the scheme of gating charge transfer during hERG's activation process is similar to that described for the Shaker channel, although hERG has less gating charge in its S4 than in Shaker. Furthermore, channel domain other than S4 contributes to gating charge involved in hERG's inactivation process.
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