Gating of the MlotiK1 potassium channel involves large rearrangements of the cyclic nucleotide-binding domains
Author(s) -
Stefania A. Mari,
João Pessoa,
Stephen Altieri,
Ulf Hensen,
Lise Thomas,
João H. MoraisCabral,
Daniel J. Müller
Publication year - 2011
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.1111149108
Subject(s) - nucleotide , cyclic nucleotide gated ion channel , kcsa potassium channel , potassium channel , gating , biophysics , cyclic nucleotide , chemistry , conformational change , ion channel , crystallography , cytoplasm , biochemistry , stereochemistry , biology , gene , receptor
Cyclic nucleotide-regulated ion channels are present in bacteria, plants, vertebrates, and humans. In higher organisms, they are closely involved in signaling networks of vision and olfaction. Binding of cAMP or cGMP favors the activation of these ion channels. Despite a wealth of structural and studies, there is a lack of structural data describing the gating process in a full-length cyclic nucleotide-regulated channel. We used high-resolution atomic force microscopy (AFM) to directly observe the conformational change of the membrane embedded bacterial cyclic nucleotide-regulated channel MlotiK1. In the nucleotide-bound conformation, the cytoplasmic cyclic nucleotide-binding (CNB) domains of MlotiK1 are disposed in a fourfold symmetric arrangement forming a pore-like vestibule. Upon nucleotide-unbinding, the four CNB domains undergo a large rearrangement, stand up by ∼1.7 nm, and adopt a structurally variable grouped conformation that closes the cytoplasmic vestibule. This fully reversible conformational change provides insight into how CNB domains rearrange when regulating the potassium channel.
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