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Probing the Energy Landscape of Activation Gating of the Bacterial Potassium Channel KcsA

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Specialty Biology
Date 2013 May 10
PMID 23658510
Citations 12
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Abstract

The bacterial potassium channel KcsA, which has been crystallized in several conformations, offers an ideal model to investigate activation gating of ion channels. In this study, essential dynamics simulations are applied to obtain insights into the transition pathways and the energy profile of KcsA pore gating. In agreement with previous hypotheses, our simulations reveal a two phasic activation gating process. In the first phase, local structural rearrangements in TM2 are observed leading to an intermediate channel conformation, followed by large structural rearrangements leading to full opening of KcsA. Conformational changes of a highly conserved phenylalanine, F114, at the bundle crossing region are crucial for the transition from a closed to an intermediate state. 3.9 µs umbrella sampling calculations reveal that there are two well-defined energy barriers dividing closed, intermediate, and open channel states. In agreement with mutational studies, the closed state was found to be energetically more favorable compared to the open state. Further, the simulations provide new insights into the dynamical coupling effects of F103 between the activation gate and the selectivity filter. Investigations on individual subunits support cooperativity of subunits during activation gating.

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References
1.
Iwamoto M, Oiki S . Amphipathic antenna of an inward rectifier K+ channel responds to changes in the inner membrane leaflet. Proc Natl Acad Sci U S A. 2012; 110(2):749-54. PMC: 3545751. DOI: 10.1073/pnas.1217323110. View

2.
Aqvist J, Luzhkov V . Ion permeation mechanism of the potassium channel. Nature. 2000; 404(6780):881-4. DOI: 10.1038/35009114. View

3.
Narzi D, Daidone I, Amadei A, Di Nola A . Protein Folding Pathways Revealed by Essential Dynamics Sampling. J Chem Theory Comput. 2015; 4(11):1940-8. DOI: 10.1021/ct800157v. View

4.
Liu Y, Nagle J . Diffuse scattering provides material parameters and electron density profiles of biomembranes. Phys Rev E Stat Nonlin Soft Matter Phys. 2004; 69(4 Pt 1):040901. PMC: 2761748. DOI: 10.1103/PhysRevE.69.040901. View

5.
Shimizu H, Iwamoto M, Konno T, Nihei A, Sasaki Y, Oiki S . Global twisting motion of single molecular KcsA potassium channel upon gating. Cell. 2008; 132(1):67-78. DOI: 10.1016/j.cell.2007.11.040. View