Key result
The purified Kir3.1 chimera formed functional K(+) channels in planar lipid bilayers, requiring PIP(2), displaying Mg(2+)-dependent inward rectification, and needing both activated Gα and Gβγ subunits for gating.
The functional reconstitution of a Kir3.1 chimera demonstrates it is a valid structural and functional model for studying G protein-gated inward rectifier potassium channels.
Does not inform clinical arrhythmia care; extends validated in vitro models for Kir channel research.
Kir3 channels control heart rate and neuronal excitability through GTP-binding (G) protein and phosphoinositide signaling pathways. These channels were the first characterized effectors of the βγ subunits of G proteins. Because we currently lack structures of complexes between G proteins and Kir3 channels, their interactions leading to modulation of channel function are not well understood. The recent crystal structure of a chimera between the cytosolic domain of a mammalian Kir3.1 and the transmembrane region of a prokaryotic KirBac1.3 (Kir3.1 chimera) has provided invaluable structural insight. However, it was not known whether this chimera could form functional K(+) channels. Here, we achieved the functional reconstitution of purified Kir3.1 chimera in planar lipid bilayers. The chimera behaved like a bona fide Kir channel displaying an absolute requirement for PIP(2) and Mg(2+)-dependent inward rectification. The channel could also be blocked by external tertiapin Q. The three-dimensional reconstruction of the chimera by single particle electron microscopy revealed a structure consistent with the crystal structure. Channel activity could be stimulated by ethanol and activated G proteins. Remarkably, the presence of both activated Gα and Gβγ subunits was required for gating of the channel. These results confirm the Kir3.1 chimera as a valid structural and functional model of Kir3 channels.
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Leal-Pinto et al. (2010) studied this question. Kir3.1 chimera was evaluated on Functional reconstitution and gating of Kir3.1 chimera. The purified Kir3.1 chimera formed functional K(+) channels in planar lipid bilayers, requiring PIP(2), displaying Mg(2+)-dependent inward rectification, and needing both activated Gα and Gβγ subunits for gating.
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