The S4-S5 linker directly couples voltage sensor movement to the activation gate in the human ether-a′-go-go-related gene (hERG) K+ channel

被引:91
作者
Ferrer, T
Rupp, J
Piper, DR
Tristani-Firouzi, M
机构
[1] Univ Utah, Sch Med, Dept Pediat, Salt Lake City, UT 84113 USA
[2] Univ Utah, Nora Eccles Harrison Cardiovasc Res & Training In, Salt Lake City, UT 84113 USA
[3] Univ Utah, Dept Physiol, Salt Lake City, UT 84113 USA
关键词
D O I
10.1074/jbc.M513518200
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
A key unresolved question regarding the basic function of voltage-gated ion channels is how movement of the voltage sensor is coupled to channel opening. We previously proposed that the S4-S5 linker couples voltage sensor movement to the S6 domain in the human ether-a'-go-go- related gene (hERG) K+ channel. The recently solved crystal structure of the voltage-gated Kv1.2 channel reveals that the S4-S5 linker is the structural link between the voltage sensing and pore domains. In this study, we used chimeras constructed from hERG and ether-a'-go-go (EAG) channels to identify interactions between residues in the S4-S5 linker and S6 domain that were critical for stabilizing the channel in a closed state. To verify the spatial proximity of these regions, we introduced cysteines in the S4-S5 linker and at the C-terminal end of the S6 domain and then probed for the effect of oxidation. The D540C-L666C channel current decreased in an oxidizing environment in a state-dependent manner consistent with formation of a disulfide bond that locked the channel in a closed state. Disulfide bond formation also restricted movement of the voltage sensor, as measured by gating currents. Taken together, these data confirm that the S4-S5 linker directly couples voltage sensor movement to the activation gate. Moreover, rather than functioning simply as a mechanical lever, these findings imply that specific interactions between the S4-S5 linker and the activation gate stabilize the closed channel conformation.
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页码:12858 / 12864
页数:7
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