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August 11, 2016Science330 citationsOpen Access

Structure of the voltage-gated K + channel Eag1 reveals an alternative voltage sensing mechanism

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JWJonathan R. WhicherRMRoderick MacKinnon

Structured PICO

P
Population
Mammalian voltage-gated potassium channel K(v)10.1 (Eag1) bound to calmodulin
I
Intervention
Single-particle cryo-electron microscopy
O
Outcome
Structure of the channel at 3.78 angstrom resolution and its gating mechanism

The cryo-EM structure of the mammalian Eag1 potassium channel reveals a novel non-domain swapped architecture and an alternative voltage-dependent gating mechanism.

Abstract

Voltage-gated potassium (K(v)) channels are gated by the movement of the transmembrane voltage sensor, which is coupled, through the helical S4-S5 linker, to the potassium pore. We determined the single-particle cryo-electron microscopy structure of mammalian K(v)10.1, or Eag1, bound to the channel inhibitor calmodulin, at 3.78 angstrom resolution. Unlike previous K(v) structures, the S4-S5 linker of Eag1 is a five-residue loop and the transmembrane segments are not domain swapped, which suggest an alternative mechanism of voltage-dependent gating. Additionally, the structure and position of the S4-S5 linker allow calmodulin to bind to the intracellular domains and to close the potassium pore, independent of voltage-sensor position. The structure reveals an alternative gating mechanism for K(v) channels and provides a template to further understand the gating properties of Eag1 and related channels.

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Cite This Study

Whicher et al. (2016) studied this question.

synapsesocial.com/papers/69fdcfb98e1e5e8b1927279bhttps://doi.org/10.1126/science.aaf8070
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