K+ channels encoded by the human ether-à-go-go-related gene (HERG) are distinguished from most other voltage-gated K+ channels by an unusually slow deactivation process that enables cardiac IKr, the corresponding current in ventricular cells, to contribute to the repolarization of the action potential. When the first 16 amino acids are deleted from the amino terminus of HERG, the deactivation rate is much faster (Wang, J., M.C. Trudeau, A.M. Zappia, and G.A. Robertson. 1998. J. Gen. Physiol. 112:637–647). In this study, we determined whether the first 16 amino acids comprise a functional domain capable of slowing deactivation. We also tested whether this “deactivation subdomain” slows deactivation directly by affecting channel open times or indirectly by a blocking mechanism. Using inside-out macropatches excised from Xenopus oocytes, we found that a peptide corresponding to the first 16 amino acids of HERG is sufficient to reconstitute slow deactivation to channels lacking the amino terminus. The peptide acts as a soluble domain in a rapid and readily reversible manner, reflecting a more dynamic regulation of deactivation than the slow modification observed in a previous study with a larger amino-terminal peptide fragment (Morais Cabral, J.H., A. Lee, S.L. Cohen, B.T. Chait, M. Li, and R. Mackinnon. 1998. Cell. 95:649–655). The slowing of deactivation by the peptide occurs in a dose-dependent manner, with a Hill coefficient that implies the cooperative action of at least three peptides per channel. Unlike internal TEA, which slows deactivation indirectly by blocking the channels, the peptide does not reduce current amplitude. Nor does the amino terminus interfere with the blocking effect of TEA, indicating that the amino terminus binding site is spatially distinct from the TEA binding site. Analysis of the single channel activity in cell-attached patches shows that the amino terminus significantly increases channel mean open time with no alteration of the mean closed time or the addition of nonconducting states expected from a pore block mechanism.We propose that the four amino-terminal deactivation subdomains of the tetrameric channel interact with binding sites uncovered by channel opening to specifically stabilize the open state and thus slow channel closing.
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1 June 2000
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June 01 2000
Dynamic Control of Deactivation Gating by a Soluble Amino-Terminal Domain in HERG K+ Channels
Jinling Wang,
Jinling Wang
aDepartment of Physiology, University of Wisconsin-Madison Medical School, Madison, Wisconsin 53706
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Cena D. Myers,
Cena D. Myers
aDepartment of Physiology, University of Wisconsin-Madison Medical School, Madison, Wisconsin 53706
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Gail A. Robertson
Gail A. Robertson
aDepartment of Physiology, University of Wisconsin-Madison Medical School, Madison, Wisconsin 53706
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Jinling Wang
,
Cena D. Myers
,
Gail A. Robertson
aDepartment of Physiology, University of Wisconsin-Madison Medical School, Madison, Wisconsin 53706
Abbreviations used in this paper: HERG, human ether-à-go-go-related gene; PAS, Per-Arnt-Sim.
Received:
March 27 2000
Revision Requested:
April 24 2000
Accepted:
April 26 2000
Online ISSN: 1540-7748
Print ISSN: 0022-1295
© 2000 The Rockefeller University Press
2000
The Rockefeller University Press
J Gen Physiol (2000) 115 (6): 749–758.
Article history
Received:
March 27 2000
Revision Requested:
April 24 2000
Accepted:
April 26 2000
Citation
Jinling Wang, Cena D. Myers, Gail A. Robertson; Dynamic Control of Deactivation Gating by a Soluble Amino-Terminal Domain in HERG K+ Channels . J Gen Physiol 1 June 2000; 115 (6): 749–758. doi: https://doi.org/10.1085/jgp.115.6.749
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